{"id":16595,"date":"2024-12-04T15:44:04","date_gmt":"2024-12-04T07:44:04","guid":{"rendered":"https:\/\/dac.nycu.edu.tw\/?post_type=portfolio&#038;p=16595"},"modified":"2026-07-30T18:56:12","modified_gmt":"2026-07-30T10:56:12","slug":"ming-chang-lin","status":"publish","type":"portfolio","link":"https:\/\/dac.nycu.edu.tw\/en\/portfolio-item\/ming-chang-lin\/","title":{"rendered":"Chair Professor M. C. Lin"},"content":{"rendered":"\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-3qbnd4c-8a3b787ca6563d49da6eeaabcf5954c2\">\n.avia-section.av-3qbnd4c-8a3b787ca6563d49da6eeaabcf5954c2{\nmargin-top:-50px;\nmargin-bottom:0px;\n}\n.avia-section.av-3qbnd4c-8a3b787ca6563d49da6eeaabcf5954c2 .av-parallax .av-parallax-inner{\nbackground-repeat:no-repeat;\nbackground-image:url(https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/03\/trnava.jpg);\nbackground-position:50% 50%;\nbackground-attachment:scroll;\n}\n.avia-section.av-3qbnd4c-8a3b787ca6563d49da6eeaabcf5954c2 .av-section-color-overlay{\nopacity:0.5;\nbackground-color:#2a2a59;\n}\n<\/style>\n<div id='av_section_1'  class='avia-section av-3qbnd4c-8a3b787ca6563d49da6eeaabcf5954c2 main_color avia-section-default avia-no-border-styling  avia-builder-el-0  el_before_av_hr  avia-builder-el-first  avia-full-stretch av-parallax-section avia-bg-style-parallax av-section-color-overlay-active av-minimum-height av-minimum-height-custom av-height-custom  container_wrap fullsize'  data-section-bg-repeat='stretch' data-av_minimum_height_px='280'><div class='av-parallax' data-avia-parallax-ratio='0.3' ><div class='av-parallax-inner main_color avia-full-stretch'><\/div><\/div><div class=\"av-section-color-overlay-wrap\"><div class=\"av-section-color-overlay\"><\/div><div class='container av-section-cont-open' style='height:280px'><main  role=\"main\" itemprop=\"mainContentOfPage\"  class='template-page content  av-content-full alpha units'><div class='post-entry post-entry-type-page post-entry-16595'><div class='entry-content-wrapper clearfix'>\n<div  class='flex_column av-3pfotd8-40ec91cfeb2181950cf2c943f3e3bf0e av_one_full  avia-builder-el-1  avia-builder-el-no-sibling  first flex_column_div  '     ><p>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-3o07gos-cbe630452ee1b91357a6afa046567dee\">\n#top .av-special-heading.av-3o07gos-cbe630452ee1b91357a6afa046567dee{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-3o07gos-cbe630452ee1b91357a6afa046567dee .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-3o07gos-cbe630452ee1b91357a6afa046567dee .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-3o07gos-cbe630452ee1b91357a6afa046567dee .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-3o07gos-cbe630452ee1b91357a6afa046567dee av-special-heading-h3 custom-color-heading  avia-builder-el-2  el_before_av_heading  avia-builder-el-first '><h3 class='av-special-heading-tag '  itemprop=\"headline\"  >Chair Professor<\/h3><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><br \/>\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-3lh7sb0-8dc884d0f5c0f405429ab2bc994ad778\">\n#top .av-special-heading.av-3lh7sb0-8dc884d0f5c0f405429ab2bc994ad778{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-3lh7sb0-8dc884d0f5c0f405429ab2bc994ad778 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-3lh7sb0-8dc884d0f5c0f405429ab2bc994ad778 .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-3lh7sb0-8dc884d0f5c0f405429ab2bc994ad778 .av-subheading{\nfont-size:15px;\n}\n\n@media only screen and (min-width: 990px){ \n#top #wrap_all .av-special-heading.av-3lh7sb0-8dc884d0f5c0f405429ab2bc994ad778 .av-special-heading-tag{\nfont-size:40px;\n}\n}\n\n@media only screen and (min-width: 768px) and (max-width: 989px){ \n#top #wrap_all .av-special-heading.av-3lh7sb0-8dc884d0f5c0f405429ab2bc994ad778 .av-special-heading-tag{\nfont-size:40px;\n}\n}\n<\/style>\n<div  class='av-special-heading av-3lh7sb0-8dc884d0f5c0f405429ab2bc994ad778 av-special-heading-h1 custom-color-heading blockquote modern-quote modern-right  avia-builder-el-3  el_after_av_heading  el_before_av_codeblock '><h1 class='av-special-heading-tag '  itemprop=\"headline\"  >Chair Professor M. C. Lin<\/h1><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><br \/>\n<\/p><\/div>\n<\/div><\/div><\/main><!-- close content main element --><\/div><\/div><\/div><div id='after_section_1'  class='main_color av_default_container_wrap container_wrap fullsize'  ><div class='container av-section-cont-open' ><div class='template-page content  av-content-full alpha units'><div class='post-entry post-entry-type-page post-entry-16595'><div class='entry-content-wrapper clearfix'>\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-lti9urzk-b86f271b3ee114cd5c61696c94f4214a\">\n#top .hr.hr-invisible.av-lti9urzk-b86f271b3ee114cd5c61696c94f4214a{\nheight:5px;\n}\n<\/style>\n<div  class='hr av-lti9urzk-b86f271b3ee114cd5c61696c94f4214a hr-invisible  avia-builder-el-5  el_after_av_section  el_before_av_hr  avia-builder-el-first  av-small-hide av-mini-hide'><span class='hr-inner '><span class=\"hr-inner-style\"><\/span><\/span><\/div>\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-lti9vf0y-25959370d49e920f23729d1f4deb4646\">\n#top .hr.hr-invisible.av-lti9vf0y-25959370d49e920f23729d1f4deb4646{\nheight:30px;\n}\n<\/style>\n<div  class='hr av-lti9vf0y-25959370d49e920f23729d1f4deb4646 hr-invisible  avia-builder-el-6  el_after_av_hr  el_before_av_one_third  av-desktop-hide av-medium-hide'><span class='hr-inner '><span class=\"hr-inner-style\"><\/span><\/span><\/div>\n<div class='flex_column_table av-3jy6h58-d2bb93ed23f35a0fbfd0eb289f967d14 sc-av_one_third av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-3jy6h58-d2bb93ed23f35a0fbfd0eb289f967d14\">\n.flex_column.av-3jy6h58-d2bb93ed23f35a0fbfd0eb289f967d14{\nwidth:30.333333333333%;\nmargin-left:0;\npadding:2px 2px 2px 2px;\nbackground-color:#f8f8f8;\n}\n#top 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class=\"avia-image-container-inner\"><div class=\"avia-image-overlay-wrap\"><img decoding=\"async\" fetchpriority=\"high\" class='wp-image-16597 avia-img-lazy-loading-not-16597 avia_image ' src=\"https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/03\/\u6797\u660e\u748b\u9662\u58eb\u76f8\u7247.jpg\" alt='' title=''  height=\"543\" width=\"413\"  itemprop=\"thumbnailUrl\" srcset=\"https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/03\/\u6797\u660e\u748b\u9662\u58eb\u76f8\u7247.jpg 413w, https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/03\/\u6797\u660e\u748b\u9662\u58eb\u76f8\u7247-152x200.jpg 152w\" sizes=\"(max-width: 413px) 100vw, 413px\" \/><\/div><\/div><\/div><\/div>\n<div class='av-flex-placeholder'><\/div>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-6tg8ik-403a03a72a534ea3f5abf60f1f59f366\">\n.flex_column.av-6tg8ik-403a03a72a534ea3f5abf60f1f59f366{\nwidth:65.166666666667%;\nmargin-left:0;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-6tg8ik-403a03a72a534ea3f5abf60f1f59f366 .av-flex-placeholder{\nwidth:4.5%;\n}\n<\/style>\n<div  class='flex_column av-6tg8ik-403a03a72a534ea3f5abf60f1f59f366 av_two_third  avia-builder-el-9  el_after_av_one_third  el_before_av_hr  flex_column_table_cell av-equal-height-column av-align-middle  '     ><p>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-5616cc-255709da11ec710fd1bfcb9d609767af\">\n#top .av-special-heading.av-5616cc-255709da11ec710fd1bfcb9d609767af{\nmargin:0 0 0 0;\npadding-bottom:10px;\ncolor:#005daf;\n}\nbody .av-special-heading.av-5616cc-255709da11ec710fd1bfcb9d609767af .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-5616cc-255709da11ec710fd1bfcb9d609767af .special-heading-inner-border{\nborder-color:#005daf;\n}\n.av-special-heading.av-5616cc-255709da11ec710fd1bfcb9d609767af .av-subheading{\nfont-size:15px;\n}\n\n@media only screen and (min-width: 480px) and (max-width: 767px){ \n#top .av-special-heading.av-5616cc-255709da11ec710fd1bfcb9d609767af{\nmargin:30px 0 0 0;\n}\n}\n\n@media only screen and (max-width: 479px){ \n#top .av-special-heading.av-5616cc-255709da11ec710fd1bfcb9d609767af{\nmargin:30px 0 0 0;\n}\n}\n<\/style>\n<div  class='av-special-heading av-5616cc-255709da11ec710fd1bfcb9d609767af av-special-heading-h2 custom-color-heading blockquote modern-quote  avia-builder-el-10  el_before_av_heading  avia-builder-el-first '><h2 class='av-special-heading-tag '  itemprop=\"headline\"  >\u6797\u660e\u748b Ming Chang Lin<\/h2><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><br \/>\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-lti3tldw-717469f7a303305187365f5d4763251f\">\n#top .av-special-heading.av-lti3tldw-717469f7a303305187365f5d4763251f{\nmargin:0 0 0 0;\npadding-bottom:20px;\ncolor:#005daf;\n}\nbody .av-special-heading.av-lti3tldw-717469f7a303305187365f5d4763251f .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-lti3tldw-717469f7a303305187365f5d4763251f .special-heading-inner-border{\nborder-color:#005daf;\n}\n.av-special-heading.av-lti3tldw-717469f7a303305187365f5d4763251f .av-subheading{\nfont-size:15px;\n}\n\n@media only screen and (min-width: 480px) and (max-width: 767px){ \n#top .av-special-heading.av-lti3tldw-717469f7a303305187365f5d4763251f{\nmargin:0 0 0 0;\n}\n}\n\n@media only screen and (max-width: 479px){ \n#top .av-special-heading.av-lti3tldw-717469f7a303305187365f5d4763251f{\nmargin:0 0 0 0;\n}\n}\n<\/style>\n<div  class='av-special-heading av-lti3tldw-717469f7a303305187365f5d4763251f av-special-heading-h3 custom-color-heading blockquote modern-quote  avia-builder-el-11  el_after_av_heading  el_before_av_textblock  title-line'><h3 class='av-special-heading-tag '  itemprop=\"headline\"  >Chair Professor<\/h3><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><br \/>\n<section  class='av_textblock_section av-4n9lcs-19bd80d58f2f53ea58eb140a4916111e '   itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div class='avia_textblock link_text'  itemprop=\"text\" ><ul>\n<li>Tel | 03-5712121 #56567<\/li>\n<li>Fax| 03-5712179<\/li>\n<li>Office | R522-1, #2 Science Building<\/li>\n<li>Email | chemmcl@emory.edu<\/li>\n<li>Lab Tel | 03-5712121 #56568<\/li>\n<\/ul>\n<\/div><\/section><br \/>\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-385y9rg-60d88c01ab69f32fa31d066bac678ae4\">\n#top .hr.hr-invisible.av-385y9rg-60d88c01ab69f32fa31d066bac678ae4{\nheight:15px;\n}\n<\/style>\n<div  class='hr av-385y9rg-60d88c01ab69f32fa31d066bac678ae4 hr-invisible  avia-builder-el-13  el_after_av_textblock  el_before_av_buttonrow '><span class='hr-inner '><span class=\"hr-inner-style\"><\/span><\/span><\/div><br \/>\n<div  class='avia-buttonrow-wrap av-37iuv7g-45f7c270cfe388af5599731815754225 avia-buttonrow-left  avia-builder-el-14  el_after_av_hr  avia-builder-el-last '>\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-34osiz0-caa66e3f7815d608bc8b966f3f15890f\">\n#top #wrap_all .avia-button.av-34osiz0-caa66e3f7815d608bc8b966f3f15890f{\nmargin-bottom:5px;\nmargin-right:5px;\n}\n#top #wrap_all .avia-button.av-34osiz0-caa66e3f7815d608bc8b966f3f15890f:hover{\nopacity:1;\ntransition:all 0.4s ease-in-out;\n}\n<\/style>\n<a href='https:\/\/scholar.nycu.edu.tw\/zh\/persons\/ming-chang-lin'  class='avia-button av-34osiz0-caa66e3f7815d608bc8b966f3f15890f avia-icon_select-yes-right-icon avia-size-medium av-icon-on-hover avia-color-theme-color'  target=\"_blank\"  rel=\"noopener noreferrer\"  aria-label=\"NYCU Academic Hub \/ \u7814\u767c\u512a\u52e2\u5e73\u53f0\"><span class='avia_iconbox_title' >NYCU Academic Hub \/ \u7814\u767c\u512a\u52e2\u5e73\u53f0<\/span><span class='avia_button_icon avia_button_icon_right avia-iconfont avia-font-entypo-fontello' data-av_icon='\ue881' data-av_iconfont='entypo-fontello' ><\/span><\/a>\n<\/div><\/p><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-1vy9xo-21ce5976df36122080a7405143b74f41\">\n#top .hr.hr-invisible.av-1vy9xo-21ce5976df36122080a7405143b74f41{\nheight:30px;\n}\n<\/style>\n<div  class='hr av-1vy9xo-21ce5976df36122080a7405143b74f41 hr-invisible  avia-builder-el-15  el_after_av_two_third  el_before_av_one_full  av-desktop-hide av-medium-hide'><span class='hr-inner '><span class=\"hr-inner-style\"><\/span><\/span><\/div>\n<div class='flex_column_table av-432zy4-f880658fe4a3f1754f361475581fd54f sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-432zy4-f880658fe4a3f1754f361475581fd54f\">\n.flex_column.av-432zy4-f880658fe4a3f1754f361475581fd54f{\nwidth:100%;\nmargin-left:0;\nborder-radius:0 50px 0 0;\npadding:25px 30px 15px 30px;\nbackground-color:#3a4586;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-432zy4-f880658fe4a3f1754f361475581fd54f .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-432zy4-f880658fe4a3f1754f361475581fd54f av_one_full  avia-builder-el-16  el_after_av_hr  el_before_av_one_full  double-line-wy titlebox-mob first flex_column_table_cell av-equal-height-column av-align-top  '     ><style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-lti5xdm4-3c94832ff04d5211817d631f0fd8d0d4\">\n#top .av-special-heading.av-lti5xdm4-3c94832ff04d5211817d631f0fd8d0d4{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-lti5xdm4-3c94832ff04d5211817d631f0fd8d0d4 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-lti5xdm4-3c94832ff04d5211817d631f0fd8d0d4 .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-lti5xdm4-3c94832ff04d5211817d631f0fd8d0d4 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-lti5xdm4-3c94832ff04d5211817d631f0fd8d0d4 av-special-heading-h3 custom-color-heading blockquote modern-quote  avia-builder-el-17  avia-builder-el-no-sibling '><h3 class='av-special-heading-tag '  itemprop=\"headline\"  >Education<\/h3><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div class='flex_column_table av-89ag5o-b12bff368f3e8d18c6576225fb663f9f sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-89ag5o-b12bff368f3e8d18c6576225fb663f9f\">\n#top .flex_column_table.av-equal-height-column-flextable.av-89ag5o-b12bff368f3e8d18c6576225fb663f9f{\nmargin-top:0px;\nmargin-bottom:0px;\n}\n.flex_column.av-89ag5o-b12bff368f3e8d18c6576225fb663f9f{\nwidth:100%;\nmargin-left:0;\nborder-width:2px;\nborder-color:#ffeca0;\nborder-style:solid;\npadding:30px 30px 30px 30px;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-89ag5o-b12bff368f3e8d18c6576225fb663f9f .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-89ag5o-b12bff368f3e8d18c6576225fb663f9f av_one_full  avia-builder-el-18  el_after_av_one_full  el_before_av_one_full  first flex_column_table_cell av-equal-height-column av-align-top  column-top-margin'     ><section  class='av_textblock_section av-39tbuk-5bd45613a0e0800a0ac74b86ae250c26 '   itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div class='avia_textblock'  itemprop=\"text\" ><p>1955-1959 Undergraduate (B.Sc.), Taiwan Normal University.<br \/>\n1962-1965, Graduate (Ph.D.), University of Ottawa<\/p>\n<\/div><\/section><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div class='flex_column_table av-4fevvw-4a230514707d81adccfcd2b75e7a54e4 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-4fevvw-4a230514707d81adccfcd2b75e7a54e4\">\n.flex_column.av-4fevvw-4a230514707d81adccfcd2b75e7a54e4{\nwidth:100%;\nmargin-left:0;\nborder-radius:0 50px 0 0;\npadding:25px 30px 15px 30px;\nbackground-color:#3a4586;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-4fevvw-4a230514707d81adccfcd2b75e7a54e4 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-4fevvw-4a230514707d81adccfcd2b75e7a54e4 av_one_full  avia-builder-el-20  el_after_av_one_full  el_before_av_one_full  double-line-wy titlebox-mob first flex_column_table_cell av-equal-height-column av-align-top  column-top-margin'     ><style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-lunpnza4-25e9c95f884942610f2603b2a3745780\">\n#top .av-special-heading.av-lunpnza4-25e9c95f884942610f2603b2a3745780{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-lunpnza4-25e9c95f884942610f2603b2a3745780 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-lunpnza4-25e9c95f884942610f2603b2a3745780 .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-lunpnza4-25e9c95f884942610f2603b2a3745780 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-lunpnza4-25e9c95f884942610f2603b2a3745780 av-special-heading-h3 custom-color-heading blockquote modern-quote  avia-builder-el-21  avia-builder-el-no-sibling '><h3 class='av-special-heading-tag '  itemprop=\"headline\"  >Experiences<\/h3><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div class='flex_column_table av-2wb7uk-d76f83b102f263e1cfc693484fb1ba57 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-2wb7uk-d76f83b102f263e1cfc693484fb1ba57\">\n#top .flex_column_table.av-equal-height-column-flextable.av-2wb7uk-d76f83b102f263e1cfc693484fb1ba57{\nmargin-top:0px;\nmargin-bottom:0px;\n}\n.flex_column.av-2wb7uk-d76f83b102f263e1cfc693484fb1ba57{\nwidth:100%;\nmargin-left:0;\nborder-width:2px;\nborder-color:#3a4586;\nborder-style:solid;\npadding:30px 30px 30px 30px;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-2wb7uk-d76f83b102f263e1cfc693484fb1ba57 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-2wb7uk-d76f83b102f263e1cfc693484fb1ba57 av_one_full  avia-builder-el-22  el_after_av_one_full  el_before_av_one_full  first flex_column_table_cell av-equal-height-column av-align-top  column-top-margin'     ><div  class='togglecontainer av-mh1pnxnw-70ebe0f17f3fb9c2dd016eb358a24db9  avia-builder-el-23  avia-builder-el-no-sibling  toggle_close_all' >\n<section class='av_toggle_section av-mh1pnwyj-66389085fa35f3a58459e2de13479267'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-1' data-fake-id='#toggle-id-1' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-1' data-slide-speed=\"200\" data-title=\"Academic Positions\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: Academic Positions\" data-aria_expanded=\"Click to collapse: Academic Positions\">Academic Positions<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-1' aria-labelledby='toggle-toggle-id-1' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><p>Chair Professor, National Yang Ming Chiao Tung University (2021-present)<br \/>\nChair Professor, National Chiao Tung University (2003-2021)<br \/>\nDirector of Center for Interdisciplinary Molecular Science, National Chiao Tung Univ. (2003\/7-2018\/2)<br \/>\nRobert W. Woodruff Professor, Emory University (1988\/9-2005\/8)<br \/>\nSenior Scientist, Naval Research Laboratory (1982\/6-1988\/8)<br \/>\nAdjunct Professor, The Catholic University of America, Washington, D. C. (1981\/1-1988\/8)<br \/>\nSupervisory Research Chemist, Naval Research Laboratory (1974-1982)<br \/>\nResearch Chemist, US. Naval Research Laboratory (1970-1974)<br \/>\nPostdoctoral Research Associate, Cornell University (1967-1969) with Prof. S. H. Bauer<br \/>\nPostdoctoral Fellow, University of Ottawa, Canada (1965-1967) with Prof. K. J. Laidler<\/p>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-mh1pokuv-3ec70f2baaddd87179f61998bc0cd7b3'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-2' data-fake-id='#toggle-id-2' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-2' data-slide-speed=\"200\" data-title=\"Guest Professorship\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: Guest Professorship\" data-aria_expanded=\"Click to collapse: Guest Professorship\">Guest Professorship<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-2' aria-labelledby='toggle-toggle-id-2' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><p>National Science Council Distinguished Visiting Professor, National Chiao Tung University (2002\/1-2002\/8; 2004; 2005\/6-2008\/5; 2008\/7- 2011\/6; 2011\/10-2016\/9)<br \/>\n1995\/1-1995\/8 The Japanese Ministry of Education Invited Visiting Professor, Institute for Molecular Science<br \/>\n1994 Summer and Winter Distinguished Visiting Professor, Institute of Atomic and Molecular Sciences, Taiwan<br \/>\n1982\/10-1983\/9 Visiting Scientist (Guggenheim Fellow), Institute of Physical Chemistry, University of Munich, W. Germany (in collaboration with Prof. G. Ertl)<\/p>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-mh1pqswl-580ca3cde884a4da4013b57d01847fad'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-3' data-fake-id='#toggle-id-3' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-3' data-slide-speed=\"200\" data-title=\"Past Editiorial Board Members\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: Past Editiorial Board Members\" data-aria_expanded=\"Click to collapse: Past Editiorial Board Members\">Past Editiorial Board Members<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-3' aria-labelledby='toggle-toggle-id-3' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><p>Int. J. Energetic Mater. and Chem. Propulsion (Associate Editor)<\/p>\n<p>The J. of Physical Chemistry (Editorial Board member)<\/p>\n<p>Int. J. Chem. Kinetics (Editorial Board member)<\/p>\n<\/div><\/div><\/div><\/section>\n<\/div><\/div><\/div><!--close column table wrapper. Autoclose: 1 --><div class='flex_column_table av-2o5sks-828a0a9d559ca22fd43d5c78334fb14a sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-2o5sks-828a0a9d559ca22fd43d5c78334fb14a\">\n.flex_column.av-2o5sks-828a0a9d559ca22fd43d5c78334fb14a{\nwidth:100%;\nmargin-left:0;\nborder-radius:0 50px 0 0;\npadding:25px 30px 15px 30px;\nbackground-color:#3a4586;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-2o5sks-828a0a9d559ca22fd43d5c78334fb14a .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-2o5sks-828a0a9d559ca22fd43d5c78334fb14a av_one_full  avia-builder-el-24  el_after_av_one_full  el_before_av_one_full  double-line-wy titlebox-mob first flex_column_table_cell av-equal-height-column av-align-top  column-top-margin'     ><style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-lti9dx47-ef3d8ae9d798fe42936151fdd123e8d7\">\n#top .av-special-heading.av-lti9dx47-ef3d8ae9d798fe42936151fdd123e8d7{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-lti9dx47-ef3d8ae9d798fe42936151fdd123e8d7 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-lti9dx47-ef3d8ae9d798fe42936151fdd123e8d7 .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-lti9dx47-ef3d8ae9d798fe42936151fdd123e8d7 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-lti9dx47-ef3d8ae9d798fe42936151fdd123e8d7 av-special-heading-h3 custom-color-heading blockquote modern-quote  avia-builder-el-25  avia-builder-el-no-sibling '><h3 class='av-special-heading-tag '  itemprop=\"headline\"  >Honors<\/h3><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><\/div><\/div><!--close column table wrapper. Autoclose: 1 --><\/p>\n<div class='flex_column_table av-3389wc-9d3d102f663161b06d1ebe90d1094407 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-3389wc-9d3d102f663161b06d1ebe90d1094407\">\n#top .flex_column_table.av-equal-height-column-flextable.av-3389wc-9d3d102f663161b06d1ebe90d1094407{\nmargin-top:0px;\nmargin-bottom:0px;\n}\n.flex_column.av-3389wc-9d3d102f663161b06d1ebe90d1094407{\nwidth:100%;\nmargin-left:0;\nborder-width:2px;\nborder-color:#ffeca0;\nborder-style:solid;\npadding:30px 30px 15px 30px;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-3389wc-9d3d102f663161b06d1ebe90d1094407 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-3389wc-9d3d102f663161b06d1ebe90d1094407 av_one_full  avia-builder-el-26  el_after_av_one_full  el_before_av_one_full  first flex_column_table_cell av-equal-height-column av-align-top  column-top-margin'     ><section  class='av_textblock_section av-lti9ed25-c68bb19fcfa9047ba9c7dbba76950123 '   itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div class='avia_textblock'  itemprop=\"text\" ><ul>\n<li>2023 The International Society of Advanced Materials, Fellow<\/li>\n<li>2009 Royal Society of Chemistry, UK, Fellow<\/li>\n<li>2005\/8-2011\/7 Taiwan Semiconductor Manufacturing Co. Distinguished Professor<\/li>\n<li>2005\/8- present Robert W. Woodruff Professor, Emeritus; Woodruff Senior Research Associate, Emory University<\/li>\n<li>2004\/2-present NCTU University Distinguished Professor<\/li>\n<li>2000 Academician, Academia Sinica, Taiwan<\/li>\n<li>1991 Japan Society for the Promotion of Science, Fellowship<\/li>\n<li>1982-1983 John Simon Guggenheim Fellow, New York, USA<\/li>\n<li>1976 The Washington Academy of Sciences, Fellow<\/li>\n<\/ul>\n<\/div><\/section><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div class='flex_column_table av-asscek-ad63a415f69e0a686b8e97df3391b7d4 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-asscek-ad63a415f69e0a686b8e97df3391b7d4\">\n.flex_column.av-asscek-ad63a415f69e0a686b8e97df3391b7d4{\nwidth:100%;\nmargin-left:0;\nborder-radius:0 50px 0 0;\npadding:25px 30px 15px 30px;\nbackground-color:#3a4586;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-asscek-ad63a415f69e0a686b8e97df3391b7d4 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-asscek-ad63a415f69e0a686b8e97df3391b7d4 av_one_full  avia-builder-el-28  el_after_av_one_full  el_before_av_one_full  double-line-wy titlebox-mob first flex_column_table_cell av-equal-height-column av-align-top  column-top-margin'     ><style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-lti9g33o-89030b64a4f5a4ba1bd4c96028121ef0\">\n#top .av-special-heading.av-lti9g33o-89030b64a4f5a4ba1bd4c96028121ef0{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-lti9g33o-89030b64a4f5a4ba1bd4c96028121ef0 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-lti9g33o-89030b64a4f5a4ba1bd4c96028121ef0 .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-lti9g33o-89030b64a4f5a4ba1bd4c96028121ef0 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-lti9g33o-89030b64a4f5a4ba1bd4c96028121ef0 av-special-heading-h3 custom-color-heading blockquote modern-quote  avia-builder-el-29  avia-builder-el-no-sibling '><h3 class='av-special-heading-tag '  itemprop=\"headline\"  >Publication<\/h3><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div class='flex_column_table av-9e2fdo-4cba1e219e603278bc9499693f377adb sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-9e2fdo-4cba1e219e603278bc9499693f377adb\">\n#top .flex_column_table.av-equal-height-column-flextable.av-9e2fdo-4cba1e219e603278bc9499693f377adb{\nmargin-top:0px;\nmargin-bottom:0px;\n}\n.flex_column.av-9e2fdo-4cba1e219e603278bc9499693f377adb{\nwidth:100%;\nmargin-left:0;\nborder-width:2px;\nborder-color:#3a4586;\nborder-style:solid;\npadding:30px 30px 30px 30px;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-9e2fdo-4cba1e219e603278bc9499693f377adb .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-9e2fdo-4cba1e219e603278bc9499693f377adb av_one_full  avia-builder-el-30  el_after_av_one_full  avia-builder-el-last  first flex_column_table_cell av-equal-height-column av-align-top  column-top-margin'     ><section  class='av_textblock_section av-lucdnijo-d8e3a3493a120266e7e74bf1445baaad '   itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div class='avia_textblock'  itemprop=\"text\" ><p>1. M. C. Lin and M. H. Back, \u201cThe Thermal Decomposition of Ethane. Part I. Initiation and Termination Steps\u201d, Can. J. Chem., 44, 505 (1966)<br \/>\n2. M. C. Lin, \u201cThe Reaction of Hydrogen and Ethylene in the Gas Phase\u201d, Can. J. Chem., 44, 1237 (1966)<br \/>\n3. M. C. Lin and M. H. Back, \u201cThe Thermal Decomposition of Ethane. Part II. The Unimolecular Decomposition of the Ethane Molecule and the Ethyl Radical\u201d, Can. J. Chem., 44, 2357 (1966)<br \/>\n4. M. C. Lin and M. H. Back, \u201cThe Thermal Decomposition of Ethane. Part III. Secondary Reactions\u201d, Can. J. Chem., 44, 2369 (1966)<br \/>\n5. M. C. Lin and K. J. Laidler, \u201cKinetics of the Decomposition of Ethane and Propane Sensitized by Azomethane. The Decomposition of the Normal Propyl Radical\u201d, Can. J. Chem., 44, 2927 (1966)<br \/>\n6. M. C. Lin and K. J. Laidler, \u201cThermal Decomposition of the Sec-Butyl Radical\u201d, Can. J. Chem., 45, 1315 (1967)<br \/>\n7. M. C. Lin and M. H. Back, \u201cImportance of the Heterogeneous Termination in the Pyrolysis of Ethane\u201d, Can. J. Chem., 45, 3165 (1967)<br \/>\n8. M. C. Lin and K. J. Laidler, \u201cTheory of the Unimolecular Decomposition of Ethane and of Ethyl and Methoxymethyl Radicals\u201d, Trans. Faraday Soc., 64, 79 (1968)<br \/>\n9. M. C. Lin and K. J. Laidler, \u201cTheoretical Aspects of the Gas-Phase Thermal Isomerizations\u201d, Trans. Faraday Soc., 64, 94 (1968)<br \/>\n10. M. C. Lin and K. J. Laidler, \u201cSome Aspects of the Thermal cis-trans Isomerization Mechanisms\u201d, Can. J. Chem., 46, 973-978 (1968)<br \/>\n11. M. C. Lin and K. J. Laidler, \u201cFall-off Behavior and Kinetic Isotope-Effects in Reactions of Cyclic Hydrocarbons\u201d, Trans. Faraday Soc., 64, 927 (1968)<br \/>\n12. M. C. Lin and S. H. Bauer, \u201cBimolecular Reaction of N2O with CO and the Recombination of O and CO as Studied in a Single-Pulse Shock Tube\u201d, J. Chem. Phys., 50, 3377 (1969)<br \/>\n13. M. C. Lin and S. H. Bauer, \u201cReactions of Oxygen Fluoride in Shock Waves. I. Kinetics and Mechanism of Oxygen Fluoride Decomposition\u201d, J. Am. Chem. Soc., 91, 7737 (1969)<br \/>\n14. H. Henrici, M. C. Lin and S. H. Bauer, \u201cReactions of F2O in Shock Waves. II. Kinetics and Mechanism of the F2O-CO Reaction\u201d, J. Chem. Phys., 52, 5834 (1970)<br \/>\n15. M. C. Lin and W. H. Green, \u201cPulsed Discharge-Initiated Chemical Lasers. I. HF Laser Emission from CHF2CL, CHFCl2, CHF3, and CF2Cl2-H2 Systems\u201d, J. Chem. Phys., 53, 3383 (1970)<br \/>\n16. M. C. Lin, \u201cHCl Chemical Laser from H + Cl2O\u201d, Chem. Phys. Lett., 7, 209 (1970)<br \/>\n17. M. C. Lin and S. H. Bauer, \u201cA Chemical CO Laser\u201d, Chem. Phys. Lett., 7, 223 (1970)<br \/>\n18. M. C. Lin, \u201cChemical HF Lasers from NF3-H2 and NF3-C2H6 Systems\u201d, J. Phys. Chem., 75, 284 (1971)<br \/>\n19. W. H. Green and M. C. Lin, \u201cPulsed Discharge Initiated Chemical Lasers. II. HF Laser Emission from NF3 and N2F4 Systems\u201d, IEEE J. Quantum Electronics, QE-7, 98 (1971)<br \/>\n20. W. H. Green and M. C. Lin, \u201cPulsed Discharge Initiated Chemical Lasers. III. Complete Population Inversion In HF\u201d, J. Chem. Phys., 54, 3222 (1971)<br \/>\n21. M. C. Lin and L. E. Brus, \u201cChemical CO Laser from the O(1D) + C3O2 (1 g+) \uf0ae 3CO(1 +) Reaction\u201d, J. Chem. Phys., 54, 5423 (1971)<br \/>\n22. L. E. Brus and M. C. Lin, \u201cChemical HF Lasers from Flash Photolysis of Various N2F4-RH Systems\u201d, J. Phys. Chem., 75, 2546 (1971)<br \/>\n23. M. C. Lin, \u201cChemical Lasers Produced from O(1D) Atom Reactions. II. A New Hydrogen Fluoride Elimination Laser from the O(1D) + CHnF4-n (n = 1, 2 and 3) Reactions\u201d, J. Phys. Chem., 75, 3642 (1971)<br \/>\n24. M. C. Lin, \u201cChemical Lasers Produced from O(1D) Atom Reactions. III. HCl Elimination Lasers from the O(1D) + CHnCl4-n (n = 1, 2 and 3) Reactions\u201d, J. Phys. Chem., 76, 811 (1972)<br \/>\n25. M. C. Lin, \u201cChemical Lasers Produced from O(1D) Atom Reactions. IV. Competitive Eliminations of HCl and HF from the Vibrationally Excited ClFHCOH, Cl2FCOH and ClF2COH Molecules\u201d, J. Phys. Chem., 76, 1425 (1972)<br \/>\n26. L. E. Brus and M. C. Lin, \u201cChemical Lasers Produced from O(1D) Atom Reactions. V. Carbon Monoxide Stimulated Emission from Flash-Initiated O3 + XCN Systems\u201d, J. Phys. Chem., 76, 1429 (1972)<br \/>\n27. M. C. Lin, \u201cChemical Lasers Produced from O(3P) Atom Reactions. I. Observation of CO and HF Laser Emissions from Several O-Atom Reactions\u201d, Int. J. Chem. Kinet., 5, 173 (1973)<br \/>\n28. M. C. Lin, \u201cChemical Lasers Produced from O(3P) Atom Reactions. II. A Mechanistic Study of 5-m CO Laser Emission from the O + C2H2 Reaction\u201d, Chemiluminescence and Bioluminescence &#8211; The Proceedings of the International Conference on Chemiluminescence. M. J. Cormier, D. Hercules and J. Lee, eds., p. 61, Plenum Press, NY (1973)<br \/>\n29. R. J. Gordon and M. C. Lin, \u201cChemical HF Laser Emission from the CHF + O2 Reaction\u201d, Chem. Phys. Lett., 22, 107 (1973)<br \/>\n30. R. J. Gordon and M. C. Lin, \u201cThe Reaction of Nitric Oxide with Vibrationally Excited Ozone\u201d, Chem. Phys. Lett., 22, 262 (1973)<br \/>\n31. M. C. Lin, \u201cThe Mechanism of CO Laser Emission from the CH + NO Reaction\u201d, J. Phys. Chem., 77, 2726 (1973)<br \/>\n32. M. C. Lin, \u201cChemical Lasers Produced from O(3P) Atom Reactions. III. 5-m CO Laser Emission from the O + CH Reaction\u201d, Int. J. Chem. Kinet., 6, 1 (1974)<br \/>\n33. M. C. Lin, \u201cPhotoexcitation and Photodissociation Lasers. Part I. Nitric Oxide Laser Emissions Resulting from C(2 ) A(2 +) and D(2 +) A(2 +) Transitions\u201d, IEEE J. Quantum Electron, QE-10, 516 (1974)<br \/>\n34. R. G. Shortridge and M. C. Lin, \u201cChemical Lasers Produced from O(3P) Atom Reactions. IV. CO Laser Emission from the O + CN Reaction\u201d, J. Phys. Chem., 78, 1451 (1974)<br \/>\n35. M. C. Lin, \u201cChemical CO and CO2 Lasers Produced from the CH + O2 Reaction\u201d, J. Chem. Phys., 61, 1835 (1974)<br \/>\n36. M. C. Lin and R. G. Shortridge, \u201cElectronic-to-Vibrational Energy Transfer Reactions. X* + CO (X = O, I and Br)\u201d, Chemical Phys. Lett., 29, 42 (1974)<br \/>\n37. R. G. Shortridge and M. C. Lin, \u201cMechanisms of HF Laser Emissions from Flash-Initiated CHFCl2 and CH2FCl-NO Mixtures\u201d, IEEE J. Quantum Electron, QE-10, 873 (1974)<br \/>\n38. M. C. Lin, \u201cPhotoexcitation and Photodissociation Lasers. II. CO Laser Emission from the Vacuum UV Photodissociation of COS\u201d, Chem. Phys., 7, 433 (1975)<br \/>\n39. M. C. Lin, \u201cPhotoexcitation and Photodissociation Lasers. III. Mechanisms of CO Laser Emission from the Vacuum UV Photodissociation of CH2CO-O2 and CH2CO-SO2 Mixtures\u201d, Chem. Phys., 7, 442 (1975)<br \/>\n40. R. G. Shortridge and M. C. Lin, \u201cCO Vibrational Population Distributions in the Reactions of OCS with O(3P) and O(1D2) Atoms\u201d, Chem. Phys. Lett., 35, 146 (1975)<br \/>\n41. M. C. Lin, R. G. Shortridge and M. E. Umstead, \u201cThe Dynamics of Reactions of O(3P) Atoms with Allene and Methylacetylene\u201d, Chem. Phys. Letters, 37, 279 (1976)<br \/>\n42. R. J. Gordon and M. C. Lin, \u201cThe Reaction of Nitric Oxide with Vibrationally Excited Ozone. II\u201d, J. Chem. Phys., 64, 1058 (1976)<br \/>\n43. R. G. Shortridge and M. C. Lin, \u201cThe Dynamics of the O(1D2) + CO(X1 +, v = 0) Reaction\u201d, J. Chem. Phys., 64, 4076 (1976)<br \/>\n44. T. L. Burks and M. C. Lin, \u201cMechanisms of CF2 + NO and CF + NO Reactions via Mass Spectral and Chemical Laser Emission Measurements\u201d, J. Chem. Phys., 64, 4235 (1976)<br \/>\n45. D. S. Y. Hsu and M. C. Lin, \u201cElectronic-to-Vibrational Energy Transfer Reactions: Na(3 2P) + CO(X1 +, v = 0) \u201d, Chem. Phys. Letters, 42, 78 (1976)<br \/>\n46. M. E. Umstead, R. G. Shortridge and M. C. Lin, \u201cThe Dynamics of CO Production from the O(3P) + Methylacetylene Reaction\u201d, Chem. Phys., 20, 271 (1977)<br \/>\n47. D. S. Y. Hsu and M. C. Lin, \u201cEvidence for Triplet CF2 Formation in the O(3P) + C2F4 Reaction\u201d, Chem. Phys., 21, 235 (1977)<br \/>\n48. R. R. Smardzewski and M. C. Lin, \u201cMatrix Reactions of Oxygen Atoms with H2S Molecules\u201d, J. Chem. Phys., 66, 3197 (1977)<br \/>\n49. D. S. Y. Hsu and M. C. Lin, \u201cThe Production of Vibrationally Excited CO from the Reaction of CH2 with O2 and CO2\u201d, Int. J. Chem. Kinet., 9, 507 (1977)<br \/>\n50. D. S. Y. Hsu and M. C. Lin, \u201cCO Product Vibrational Energy Distribution in the O(3P) + C3O2 Reaction\u201d, ACS Symp. Ser., 56, 121 (1977)<br \/>\n51. M. E. Umstead and M. C. Lin, \u201cThe Dynamics of CO Production from the Reaction of O(3P) with 1- and 2-Butyne\u201d, Chem. Phys., 25, 353 (1977)<br \/>\n52. D. S. Y. Hsu, L. J. Colcord and M. C. Lin, \u201cLaser Emission and Energy Partitioning in the Reaction of Oxygen Atoms with 3,3,3-Trifluoromethylacetylene\u201d, J. Phys. Chem., 82, 121 (1978)<br \/>\n53. M. C. Lin, \u201cEnergy Distribution in HF from the Reaction of CHF with O2 and NO\u201d, J. Chem. Phys., 68, 2004 (1978)<br \/>\n54. D. S. Y. Hsu and M. C. Lin, \u201cChemical Lasers Produced from O(3P) Atom Reactions V. CO Laser Emissions and Vibrational Energy Distribution in the Flash-Initiated SO2-CFBr3 System\u201d, Int. J. Chem. Kinet., 10, 839 (1978)<br \/>\n55. L. J. Colcord and M. C. Lin, \u201cEvidence for HF Elimination Via a Five-Centered Complex in the Photolysis of 3, 3, 3-Trifluoropropyne Near 200 nm\u201d, J. Photochem., 8, 337 (1978)<br \/>\n56. D. S. Y. Hsu and M. C. Lin, \u201cDynamics of the Reaction of Oxygen Atoms with Carbon Suboxide\u201d, J. Chem. Phys., 68, 4347 (1978)<br \/>\n57. M. E. Umstead, R. G. Shortridge and M. C. Lin, \u201cEnergy Partitioning in the Photodissociation of C3H4O Near 200 nm\u201d, J. Phys. Chem., 82, 1455 (1978)<br \/>\n58. D. S. Y. Hsu and M. C. Lin, \u201cTwo-Laser Studies of E \uf0ae V Energy Transfer Reactions Involving CO and Electronically Excited I2, ICl and NO2\u201d, Chem. Phys. Lett., 56, 79 (1978)<br \/>\n59. T. L. Burks and M. C. Lin, \u201cNon-Statistical Energy Partitioning in the Decomposition of Chemically Activated CF3OH and CH2FOH Molecules\u201d, Chem. Phys., 33, (1978)<br \/>\n60. M. E. Umstead and M. C. Lin, \u201cEffect of Laser Radiation on the Catalytic Decomposition of Formic Acid on Platinum\u201d, J. Phys. Chem., 82, 2047 (1978)<br \/>\n61. J. E. Butler, J. W. Hudgens, M. C. Lin and G. K. Smith, \u201cObservation of OH (v = 0,1) in the reactions of O(3P) with HCl (v = 0, 1, 2) \u201d, Chem. Phys. Lett., 58, 216 (1978)<br \/>\n62. D. S. Y. Hsu, M. E. Umstead and M. C. Lin, \u201cKinetics and Mechanisms of Reactions of CF, CHF and CF2 Radicals\u201d, ACS Symposium Series Monograph on Kinetics and Dynamics of Reactions with Atomic Fluorine and Fluorine-Rich Polyatomic Radicals, Vol. 66, p. 128, 1978<br \/>\n63. A. Baronavski, J. E. Butler, J. W. Hudgens, M. C. Lin, J. R. McDonald and M. E. Umstead, \u201cChemical Applications of Lasers\u201d, Advances in Laser Chemistry, Ed. A. Zewail, p. 62, Springer-Verlag, New York, 1978<br \/>\n64. M. E. Umstead, D. E. Tevault and M. C. Lin, \u201cThe Effect of Laser Radiation on Catalytic Reactions\u201d, Proc. 22nd Int. Technical Symposium and Instrument Display, \u201cLaser Spectroscopy\u201d, p. 33, Vol. 158, SPIE (1978)<br \/>\n65. D. E. Tevault, M. C. Lin, M. E. Umstead and R. R. Smardzewski, \u201cEvidence for Production of the Hydroxycarbonyl Radical in the Decomposition of Formic Acid on Platinum\u201d, Int. J. Chem. Kinet., 11, 445 (1979)<br \/>\n66. D. S. Y. Hsu, R. G. Shortridge and M. C. Lin, \u201cProducts Vibrational Energy Distribution in the O(3P) + CHF Reaction\u201d, Chem. Phys., 38, 285 (1979)<br \/>\n67. M. E. Umstead, F. J. Woods and M. C. Lin, \u201cMechanism of HF Production and Stimulated Emission from the Reaction O(3P) Atoms with Fluoroethenes\u201d, J. Phys. Chem., 83, 1289 (1979)<br \/>\n68. J. E. Butler, L. P. Goss, M. C. Lin and J. W. Hudgens, \u201cProduction, Detection and Reactions of the CH Radical\u201d, Chem. Phys. Letts., 63, 104 (1979)<br \/>\n69. G. K. Smith, J. E. Butler and M. C. Lin, \u201cThe OH(X2 , v = 0) Rotational Energy Distribution in the Reaction of O(1D) + H2\u201d, Chem. Phys. Lett., 65, 115 (1979)<br \/>\n70. L. D. Talley, D. E. Tevault and M. C. Lin, \u201cLaser Diagnostics of Matrix-Isolated OH Radicals from Oxidation of H2 on Platinum\u201d, Chem. Phys. Lett., 66, 584 (1979)<br \/>\n71. W. B. Shaub and M. C. Lin, \u201cPredictive Modeling of Diborane Oxidation\u201d, Proc. 10th Materials Research Symposium on Characterization of High Temperature Vapors and Gases, NBS Special Pub. No. 561, p. 1249 (1979)<br \/>\n72. D. E. Tevault and M. C. Lin, \u201cCatalytic Reactions Studied by a Matrix Isolation Technique: Decomposition of HCOOH on Pt\u201d, Proc. 10th Materials Research Symposium on Characterization of High Temperature Vapors and Gases, NBS Special Pub. No. 561, p. 1551 (1979)<br \/>\n73. D. S. Y. Hsu, W. M. Shaub, T. L. Burks and M. C. Lin, \u201cDynamics of Reactions of O(3P) Atoms with CS, CS2 and OCS\u201d, Chem. Phys., 44, 143 (1979)<br \/>\n74. M. C. Lin and J. R. McDonald, \u201cProduction and Detection of Reactive Species with Lasers in Static Systems\u201d, A chapter in the book on &#8220;Reactive Intermediates in the Gas Phase: Generation and Monitoring.&#8221; Ed. D. W. Setser, Academic Press, p. 233-304, 1979<br \/>\n75. G. K. Smith, J. E. Butler and M. C. Lin, \u201cTwo-Laser Study of the Dynamics of the O(1D) + H2 Reaction\u201d, Proc. Int. Conf. on Lasers &#8217;78, V. J. Corcoran, ed., p. 215, STS Press, McLean, VA, 1979<br \/>\n76. D. E. Tevault, M. E. Umstead and M. C. Lin, \u201cEffects of Laser Radiation on Heterogeneous Reactions in Static and Flow Systems\u201d, Proc. Int. Conf. on Lasers &#8217;78, V. J. Corcoran, ed., p. 219, STS Press, McLean, VA, 1979<br \/>\n77. A. B. Harvey, H. Ravner, N. L. Jarvis, M. C. Lin, A. A. Conte and N. D. Rebuck, \u201cNovel Lubricants: Deuterated Materials with Superior Properties\u201d, Proc. of National Symposium on Wear and Corrosion, p. 59, Am. Chem. Soc., 1979<br \/>\n78. M. E. Umstead, L. D. Talley, D. E. Tevault and M. C. Lin, \u201cLaser Applications to Heterogeneous Catalysis: Reactant Excitation and Product Diagnostics\u201d, Opt. Eng., 19, 94 (1980)<br \/>\n79. W. M. Shaub, T. L. Burks and M. C. Lin, \u201cDynamics of Reactions of O(3P) Atoms with 1-Alkynes as Studied by a CO Laser Resonance Absorption Technique\u201d, Chem. Phys., 45, 455 (1980)<br \/>\n80. L. D. Talley and M. C. Lin, \u201cLaser Diagnostics of HO Radical Formation in the H2 + N2O Reaction on Platinum\u201d, AIP Conf. Proc. Vol. 61, Aspects of the Kinetics and Dynamics of Surface Reactions, p. 297 (1980)<br \/>\n81. D. E. Tevault, L. D. Talley and M. C. Lin, \u201cMatrix Isolation and Laser Diagnostic Studies of Catalytic Oxidation of H2 and D2 on Platinum\u201d, J. Chem. Phys., 72, 3314 (1980)<br \/>\n82. J. E. Butler, J. W. Fleming, L. P. Goss and M. C. Lin, \u201cKinetics of CH Radical Reactions Important to Hydrocarbon Combustion Systems\u201d, ACS Symp. Ser., 134, 397 (1980)<br \/>\n83. W. M. Shaub and M. C. Lin, \u201cCarbon Monoxide Laser Resonance Absorption Studies of O(3P) + 1-Alkynes and Methylene Radical Reactions\u201d, ACS Symp. Ser., 134, 403 (1980)<br \/>\n84. L. D. Talley and M. C. Lin, \u201cProduction of OH Radicals in the Catalytic Oxidation of H2 by NO2 over Pt\u201d, Proc. Int. Conf. on Lasers &#8217;79, V. J. Corcoran, ed., p. 270, STS Press, McLean, VA, 1980<br \/>\n85. J. W. Fleming, G. T. Fujimoto, M. C. Lin and A. B. Harvey, \u201cApplications of Multiphoton Dissociation and Laser Induced Fluorescence to Combustion: Reactions of CH Radicals with Unsaturated Hydrocarbons\u201d, Proc. Int. Conf. on Lasers &#8217;79, V. J. Corcoran, ed., p. 246, STS Press, McLean, VA, 1980<br \/>\n86. D. S. Y. Hsu and M. C. Lin, \u201cThe Dynamics of the Quenching of Na(3 2PJ) by CO(X 1 +, v=0) \u201d, J. Chem. Phys., 73, 2188 (1980)<br \/>\n87. M. E. Umstead, J. W. Fleming and M. C. Lin, \u201cPhotonitration of Hydrocarbons with Lasers\u201d, IEEE J. Quantum Electron, QE-16, 1227 (1980)<br \/>\n88. G. T. Fujimoto, M. E. Umstead and M. C. Lin, \u201cEffects of Competitive Hydrogen Halide Elimination on CO Production from the Reaction of O(3P) Atoms with Propargyl Chloride and Bromide\u201d, Chem. Phys., 51, 399 (1980)<br \/>\n89. M. C. Lin, \u201cDynamics of Oxygen Atom Reactions\u201d, Adv. Chem. Phys. (Potential Energy Surfaces), 42, 113 (1980)<br \/>\n90. J. J. DeCorpo, J. W. Hudgens, M. C. Lin, F. E. Saalfeld, M. E. Seaver and J. R. Wyatt, \u201cCharacterization of Multiphoton Ionization Mass Spectrometry\u201d, Adv. Mass Spectrom., 8A, 133 (1980)<br \/>\n91. M. C. Lin and D. E. Tevault, \u201cA Possible Role of Triplet-State Species as Chain-Initiators in High Temperature Oxidation of Aromatic Hydrocarbons\u201d, Combustion and Flames, 42, 139 (1981)<br \/>\n92. W. M. Shaub, D. S. Y. Hsu, T. L. Burks and M. C. Lin, \u201cDynamics and Mechanisms of CO Production from the Reactions of CH2 Radicals with O(3P) and O2\u201d, 18th Symposium (International) on Combustion, The Combustion Institute, Pittsburgh, 1981, p. 811.<br \/>\n93. L. D. Talley, W. A. Sanders, D. J. Bogan and M. C. Lin, \u201cInternal Energy of Hydroxyl Radicals Desorbing from Polycrystalline Pt Surfaces\u201d, Chem. Phys. Lett., 78, 500 (1981)<br \/>\n94. J. E. Butler, G. K. Smith, L. D. Talley and M. C. Lin, \u201cRotational and Vibrational Energy Distributions of 16OH(X2 ) and 18OH(X2 ) Produced in the Reaction of O(1D) with H2O and H218O\u201d, J. Chem. Phys., 74, 4501 (1981)<br \/>\n95. J. E. Butler, J. W. Fleming, L. P. Goss and M. C. Lin, \u201cKinetics of CH Radical Reactions with Selected Molecules at Room Temperature\u201d, Chem. Phys. 56, 355 (1981)<br \/>\n96. A. P. Baronavski, M. E. Umstead and M. C. Lin, \u201cLaser Diagnostics of Reaction Product Energy Distributions\u201d, Adv. Chem. Phys. (Photoselective Chem., Part 2), 47, 85 (1981)<br \/>\n97. T. L. Burks and M. C. Lin, \u201cThe Dynamics of Formation of Vibrationally Excited HF in Reactions of O(21D2) Atoms with Partially Fluorinated Alkanes\u201d, Int. J. Chem. Kinet., 13, 977 (1981)<br \/>\n98. L. D. Talley, W. A. Sanders, D. J. Bogan, and M. C. Lin, \u201cDynamics of Hydroxyl Radical Desorption from a Polycrystalline Platinum Surface\u201d, J. Chem. Phys., 75, 3107 (1981)<br \/>\n99. T. G. DiGiuseppe, J. W. Hudgens and M. C. Lin, \u201cDetection of Gas-Phase Methyl Radicals Using Multiphoton Ionization\u201d, Chem. Phys. Lett., 82, 267 (1981)<br \/>\n100. L. D. Talley and M. C. Lin, \u201cEnergetics and Mechanism of Hydroxyl Radical Formation in the Catalytic Decomposition of Water on Pt Surfaces\u201d, Chem. Phys., 61, 249 (1981)<br \/>\n101. M. E. Umstead, S. A. Lloyd and M. C. Lin, \u201cThe Mechanism of the Laser-Enhanced Reaction of NO2 with CO\u201d, Proc. Int. Conf. on Lasers &#8217;80, C. B. Collins, ed., p. 286, STS Press, McLean, VA, 1981<br \/>\n102. W. A. Sanders and M. C. Lin, \u201cApplication of the Laser-Induced Fluorescence Technique to the Study of Heterogeneous Catalytic Reactions\u201d, in Laser Spectroscopy for Sensitive Detection, SPIE Vol. 286, p. 101, 1981<br \/>\n103. T. G. DiGiuseppe, J. W. Hudgens and M. C. Lin, \u201cMultiphoton Ionization of CH3 Radicals in the Gas Phase\u201d, J. Phys. Chem., 86, 36 (1982)<br \/>\n104. G. S. Selwyn, G. T. Fujimoto and M. C. Lin, \u201cCatalytic Removal of NH and NH2 Free Radicals by Polycrystalline Pt and Fe Surfaces\u201d, J. Phys. Chem., 86, 780 (1982)<br \/>\n105. W. M. Shaub, T. L. Burks and M. C. Lin, \u201cFormation of Vibrationally Excited CO in the O(1D2) + C2H2 Reaction\u201d, J. Phys. Chem., 86, 757 (1982)<br \/>\n106. G. T. Fujimoto, M. E. Umstead and M. C. Lin, \u201cDynamics of CO Formation in the Photodissociation of HNCO and CH2CO at 193nm\u201d, Chem. Phys., 65, 197 (1982)<br \/>\n107. G. S. Selwyn and M. C. Lin, \u201cProduction of the NH Radical from the Catalytic Decomposition of NH3 on Polycrystalline Pt and Fe Surfaces at High Temperatures\u201d, Chem. Phys., 67, 213 (1982)<br \/>\n108. M. R. Berman, J. W. Fleming, A. B. Harvey and M. C. Lin, \u201cTemperature Dependence of the Reactions of CH Radicals with Unsaturated Hydrocarbons\u201d, Chem. Phys., 73, 27 (1982)<br \/>\n109. T. G. DiGiuseppe, J. W. Hudgens and M. C. Lin, \u201cNew Electronic States in CH3, Observed Using Multiphoton Ionization\u201d, J. Chem. Phys., 76, 3338 (1982)<br \/>\n110. M. R. Berman, J. W. Fleming, A. B. Harvey and M. C. Lin, \u201cTemperature Dependence of CH Radical Reactions with O2, NO, CO and CO2\u201d, 19th Symposium (International) on Combustion, The Combustion Institute, Pittsburgh, 1982, p. 73.<br \/>\n111. D. S. Y. Hsu, W. M. Shaub, M. Blackburn and M. C. Lin, \u201cThermal Decomposition of Formic Acid at High Temperatures in Shock Waves\u201d, 19th Symposium (International) on Combustion, The Combustion Institute, Pittsburgh, 1982, p. 89.<br \/>\n112. J. W. Hudgens, T. G. DiGiuseppe and M. C. Lin, \u201cTwo Photon Resonant Enhanced Multiphoton Ionization Spectroscopy and State Assignments of the Methyl Radical\u201d, J. Chem. Phys., 79, 571 (1983)<br \/>\n113. G. T. Fujimoto, G. S. Selwyn, J. T. Keiser and M. C. Lin, \u201cTemperature Effect on the Removal of Hydroxyl Radicals by a Polycrystalline Platinum Surface\u201d, J. Phys. Chem., 87, 1906 (1983)<br \/>\n114. G. S. Selwyn and M. C. Lin, \u201cCatalytic Oxidation of NH3 on a Polycrystalline Pt Surface Studied by Laser Induced Fluorescence\u201d, Surface Studies with Lasers, F. R. Aussenegg, A. Leitner and M. E. Lipitsch, eds., p. 115, Springer-Verlag, NY (1983)<br \/>\n115. D. S. Y. Hsu, W. M. Shaub, T. Creamer, D. Gutman and M. C. Lin, \u201cKinetic Modeling of CO Production from the Reaction of CH3 with O2 in Shock Waves\u201d, Ber. Bunsenges. Phys. Chem., 87, 909 (1983)<br \/>\n116. M. C. Lin, M. E. Umstead and N. Djeu, \u201cChemical Lasers\u201d, Ann. Rev. Phys. Chem., 34, 557 (1983)<br \/>\n117. M. R. Berman and M. C. Lin, \u201cKinetics and Mechanisms of the CH+N2 Reaction. Temperature- and Pressure-Dependence Studies and Transition-State-Theory Analysis\u201d, J. Phys. Chem., 87, 3933 (1983)<br \/>\n118. M. R. Berman and M. C. Lin, \u201cKinetics and Mechanisms of the Reactions of CH with CH4, C2H6 and n-C4H10\u201d, Chem. Phys., 82, 435 (1983)<br \/>\n119. D. S. Y. Hsu, G. L. Burks, M. D. Beebe and M. C. Lin, \u201cThermal Decomposition of Methyl Nitrite in Shock Waves Studied by Laser Probing\u201d, Int. J. Chem. Kinet., 16, 1139 (1984)<br \/>\n120. D. A. Lichtin, M. R. Berman and M. C. Lin, \u201cNH (A3\u03a0 \u2192 X3\u03a3-) Chemiluminescence from the CH(X2 )+NO Reaction\u201d, Chem. Phys. Lett., 108, 18 (1984)<br \/>\n121. D. S. Y. Hsu and M. C. Lin, \u201cInfrared Laser Probing of Combustion and Energetic Molecule Decomposition Reactions in Shock Waves\u201d, SPIE Proceedings, 482, 79 (1984)<br \/>\n122. M. R. Berman and M. C. Lin, \u201cKinetics and Mechanisms of the Reactions of CH and CD with H2 and D2\u201d, J. Chem. Phys., 80, 5743 (1984)<br \/>\n123. D. S. Y. Hsu, C. Y. Lin and M. C. Lin, \u201cCO Formation in Early Stage High Temperature Benzene Oxidation under Fuel Lean Conditions: Kinetics of the Initiation Reaction, C6H6 \uf0ae C6H5 + H\u201d, 20th Symposium (International) on Combustion, The Combustion Institute, Pittsburgh, 1984, p. 623.<br \/>\n124. G. S. Selwyn and M. C. Lin, \u201cFree Radical Formation in the Catalytic Oxidation of NH3 over a Polycrystalline Pt Surface at High Temperatures\u201d, Langmuir, 1, 212 (1985)<br \/>\n125. C. S. Dulcey, M. C. Lin and C. C. Hsu, \u201cThermal Desorption of the PO Radical from Polycrystalline Pt Surfaces\u201d, Chem. Phys. Lett., 115, 481 (1985)<br \/>\n126. G. T. Fujimoto, M. E. Umstead and M. C. Lin, \u201cCO Product Energy Distribution in the Photodissociation of Methylketene and Acrolein at 193 nm\u201d, J. Chem. Phys., 82, 3042 (1985)<br \/>\n127. H. J. Robota, W. Vielhaber, M. C. Lin, J. Segner and G. Ertl, \u201cDynamics of Interaction of H2 and D2 with Ni(110) and Ni(111) Surfaces\u201d, Surf. Sci., 155, 101 (1985)<br \/>\n128. D. W. Squire, C. S. Dulcey and M. C. Lin, \u201cFormation of CH3 Radicals in the Decomposition of Trimethyl Aluminum on Hot Solid Surfaces\u201d, Chem. Phys. Lett., 116, 525 (1985)<br \/>\n129. D. A. Lichtin and M. C. Lin, \u201cKinetics of CN Radical Reactions with Selected Molecules at Room Temperature\u201d, Chem. Phys., 96, 473 (1985)<br \/>\n130. J. T. Keiser, M. A. Hoffbauer and M. C. Lin, \u201cProduction of OH on Polycrystalline Nickel Studied by Thermal Desorption\/Laser-Induced Fluorescence\u201d, J. Phys. Chem., 89, 2635 (1985)<br \/>\n131. D. W. Squire, C. S. Dulcey and M. C. Lin, \u201cMechanistic Studies of the Decompostion of Trimethylaluminum on Heated Surfaces\u201d, J. Vac. Sci. Tech., B3, 1513 (1985)<br \/>\n132. C.-Y. Lin and M. C. Lin, \u201cUnimolecular Decomposition of the Phenoxy Radical in Shock Waves\u201d, Int. J. Chem. Kinet., 17, 1025 (1985)<br \/>\n133. D. S. Y. Hsu and M. C. Lin, \u201cLaser Probing and Kinetic Modeling of NO and CO Production in Shock-Wave Decompostion of Nitromethane Under Highly Diluted Conditions\u201d, J. Energ. Mat., 3, 95 (1985)<br \/>\n134. T. G. DiGiuseppe, J. W. Hudgens and M. C. Lin, \u201cTwo- and Three Photon Resonance Enhanced Multiphoton Ionization Spectroscopy of the Gas Phase Methyl Radical\u201d, Lasers as Reactants and Probes in Chemistry W. M. Jackson and A. B. Harvey, eds., p. 121, Howard University Press, Washington, DC (1985)<br \/>\n135. G. S. Selwyn and M. C. Lin, \u201cLaser Studies of Surface Chemistry\u201d, Lasers as Reactants and Probes in Chemistry W. M. Jackson and A. B. Harvey, eds., p. 269, Howard University Press, Washington, DC (1985)<br \/>\n136. M. R. Berman, J. W. Fleming and M. C. Lin, \u201cLaser Studies of the Kinetics and Mechanisms of CH Racial Reactions\u201d, Lasers as Reactants and Probes in Chemistry W. M. Jackson and A. B. Harvey, eds., p. 451, Howard University Press, Washington, DC (1985)<br \/>\n137. D. S. Y. Hsu, W. H. Shaub and M. C. Lin, \u201cLaser Probing of High Temperature Reaction Kinetics in Shock Waves\u201d, Lasers as Reactants and Probes in Chemistry W. M. Jackson and A. B. Harvey, eds., p. 421, Howard University Press, Washington, DC (1985)<br \/>\n138. M. E. Umstead and M. C. Lin, \u201cInfrared Chemical Lasers\u201d, Chemiluminescence and Bioluminescence J. C. Burr, ed., p. 187, Marcel Dekker (1985)<br \/>\n139. A. Modl, H. Robota, J. Segner, W. Vielhaber, M. C. Lin and G. Ertl, \u201cRotational State Distributions of NO Molecules after Interaction with Germanium Surfaces\u201d, J. Chem. Phys., 83, 4800 (1985)<br \/>\n140. M. E. Umstead, S. A. Lloyd, J. W. Fleming and M. C. Lin, \u201cLaser-Induced Reactions of NO2 in the Visible Region: I. Kinetic Modeling of Nitrobutane Formation in the NO2-Isobutane System\u201d, Appl. Phys. B., B38, 219 (1985)<br \/>\n141. M. E. Umstead, S. A. Lloyd and M. C. Lin, \u201cKinetics and Mechanism of the Thermal Decomposition of Dimethylnitramine and Dimethylnitrosamine\u201d, Proc. 21st JANNAF Combustion Meeting, p. 417, CPIA, Laurel, MD (1985)<br \/>\n142. C. C. Hsu, J. V. Pistritto, C. S. Dulcey and M. C. Lin, \u201cCatalytic Removal of DMMP and TMP Studied by Laser Induced Fluorescence and Multiphoton Ionization-Mass Spectrometry\u201d, Proc. 1985 Scientific Conference on Chemical Defense Research, CRDEC-SP-85006, p. 483, CRDEC, Aberdeen, MD (1985)<br \/>\n143. S. A. Lloyd, M. E. Umstead and M. C. Lin, \u201cKinetics and Mechanism of Thermal Decomposition of Dimethylnitramine at Low Temperatures\u201d, J. Energ. Mat., 3, 187 (1985)<br \/>\n144. M. E. Umstead, S. A. Lloyd and M. C. Lin, \u201cKinetics Modeling of Dimethylnitramine Thermal Decompostion &#8211; A Mechanistic Extrapolation to RDX Decomposition in the Gas Phase\u201d, Proc. 22nd JANNAF Combustion Meeting, Chemical Propulsion Information Agency, Pub. No. 432, p. 515, Laurel, MD. (1985)<br \/>\n145. M. E. Umstead, S. A. Lloyd and M. C. Lin, \u201cLaser-Induced Reactions of NO2 in the Visible Region: II. Kinetic and Mechanistic Study of the NO2-CO System\u201d, Appl. Phys., B39, 55 (1986)<br \/>\n146. M. E. Umstead and M. C. Lin, \u201cLaser-Induced Reactions of NO2 in the Visible Region: III. Adamantane Nitration in the Liquid Phase\u201d, Appl. Phys., B39, 61 (1986)<br \/>\n147. C.-Y. Lin and M. C. Lin, \u201cThermal Decomposition of Methyl Phenyl Ether in Shock Waves: The Kinetics of Phenoxy Radical Reactions\u201d, J. Phys. Chem., 90, 425 (1986)<br \/>\n148. M. A. Hoffbauer, D. S. Y. Hsu and M. C. Lin, \u201cRotational Energy Accommodation of OH Radicals Desorbing from a Pt Foil and a Pt (111) Single Crystal\u201d, J. Chem. Phys., 84, 532 (1986)<br \/>\n149. C. Y. Lin and M. C. Lin, \u201cThe Combination Reaction of CH3 with C6H5O\u201d, Austral. J. Chem., 39, 723 (1986)<br \/>\n150. D. A. Lichtin and M. C. Lin, \u201cTemperature Dependence of the Reactions of CN Radicals with C2H2 and C2H4\u201d, Chem. Phys., 104, 325 (1986)<br \/>\n151. M. C. Lin and W. A. Sanders, \u201cDetection and Spectroscopy of Methyl and Substituted Methyl Radicals by Resonance Enhanced Multiphoton Ionization\u201d, Advances in Multiphoton Processes and Spectroscopy, vol. 2. S. H. Lin, ed., p. 333, World Scientific Pub. Co., Singapore (1986)<br \/>\n152. D. K. Gaskill, N. Bottka and M. C. Lin, \u201cThe Growth of GaN Using Trimethygallium and Hydrazine OMCVD\u201d, Apl. Phys. Lett., 48, 1449 (1986)<br \/>\n153. D. S. Y. Hsu, M. A. Hoffbauer and M. C. Lin, \u201cActivation Energies for Thermal Desorption of Hydroxyl Radicals from Single-Crystal Platinum (111) and Polycrystalline Platinum Foil Surfaces\u201d, Langmuir, 2, 302 (1986)<br \/>\n154. M. C. Lin and G. Ertl, \u201cLaser Probing of Molecules Desorbing and Scattering from Solid Surfaces\u201d, Ann. Rev. Phys. Chem., 37, 587 (1986)<br \/>\n155. C. S. Dulcey, C. C. Hsu, J. V. Pistritto and M. C. Lin, \u201cThe Catalytic Removal of DMMP and TMP Studied by Laser Induced Fluorescence and Multiphoton Ionization-Mass Spectroscopy\u201d, Proc. 1985 Scientific Conference on Chemical Defense Research, p. 469, CRDEC, Aberdeen, MD (1986)<br \/>\n156. A. Modl, H. Robota, J. Segner, W. Vielhaber, M. C. Lin and G. Ertl, \u201cReaction Dynamics of NO2 Decomposition on Ge: An Example of Dissociative Desorption\u201d, Surf. Sci., 169, L341 (1986)<br \/>\n157. D. W. Squire, C. S. Dulcey and M. C. Lin, \u201cMPI\/MS Studies of Thin Film Deposition Processes: Methyl Production from Trimethylgallium Decomposition and the Effect of Added Hydrazine\u201d, Mat. Res. Soc. Symp. Proc., Vol. 54 (Thin Films-Interfaces and Phenomena), eds. R. J. Nemanich, P. S. Ho and S. S. Lau, p. 709, Mat. Res. Soc., Pittsburgh, PA (1986)<br \/>\n158. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cKinetic Study of the Reaction CH(X2\uf050) + H2 CH2 (X3B1) in the Temperature Range 372 to 675 K\u201d, J. Chem. Phys., 85, 4373 (1986)<br \/>\n159. D. W. Squire, C. S. Dulcey and M. C. Lin, \u201cMultiphoton Ionization Mass Spectrometry as a Mechanistic Probe of Chemical Vapor Deposition\u201d, Proc. of the International Conference on Applications of Lasers and Electro-Optics (ICALEO &#8217;85), LIA Vols. 49, 51 and 52, p. 148, The Laser Institute of America, OH (1986)<br \/>\n160. D. W. Squire, C. S. Dulcey and M. C. Lin, \u201cMultiphoton-Ionization\/Mass Spectrometric Detection of Gallium Atom During the Trimethylgallium CVD Reaction\u201d, Chem. Phys. Lett., 131, 112 (1986)<br \/>\n161. D. K. Gaskill, N. Bottka and M. C. Lin, \u201cOMVPE of GaN and AlN Films by Metal Alkyls and Hydrazine\u201d, J. Crystal Growth, 77, 418 (1986)<br \/>\n162. C. S. Dulcey and M. C. Lin, \u201cDetection of Small Organic Sulfides by Multiphoton Ionization Spectrometry\u201d, Proc. 2nd Int. Symp. Protection Against Chemical Warfare Agents, p. 221-227, Stockholm, Sweden (1986)<br \/>\n163. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cTemperature Dependence of CH Radical Reactions with H2O and CH2O\u201d, 21st Symposium (International) on Combustion, The Combustion Institute, Pittsburgh, 1986, p. 713.<br \/>\n164. W. A. Sanders, C. Y. Lin and M. C. Lin, \u201cOn the Importance of the Reaction CH2+N2 \uf0ae HCN+NH as a Precursor for Prompt NO Formation\u201d, Combustion Sci. Technol., 51, 103 (1987)<br \/>\n165. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cKinetics of CH(X2\u03a0) Radical Reactions with Propane, Isobutane and Neopentane\u201d, Chem. Phys., 112, 409 (1987)<br \/>\n166. J. A. Dagata, D. W. Squire, C. S. Dulcey, D. S. Y. Hsu and M. C. Lin, \u201cMPI\/MS Detection of SiF and SiF2 Radicals Produced from the Reaction of F2 and NF3 with Silicon\u201d, Chem. Phys. Lett., 134, 151 (1987)<br \/>\n167. W. A. Sanders and M. C. Lin, \u201cKinetics and Mechanism of Reactions of NF2 with Olefins\u201d, JCS Faraday Trans. II, 83, 905 (1987)<br \/>\n168. D. S. Y. Hsu, M. A. Hoffbauer and M. C. Lin, \u201cDynamics of OH Desorption from Single Crystal Pt (111) and Polycrystalline Pt Foil Surfaces\u201d, Surf. Sci., 184, 25 (1987)<br \/>\n169. D. S. Y. Hsu and M. C. Lin, \u201cLaser Probing of OH Production in Catalytic Oxidation of NH3 by NO and NO2 over a Polycrystalline Pt Surface at High Temperatures\u201d, Appl. Surf. Sci., 28, 415 (1987)<br \/>\n170. J. A. Dagata, D. W. Squire, C. S. Dulcey, D. S. Y. Hsu and M. C. Lin, \u201cChemical Processes Involved in the Etching of Silicon by Xenon Difluoride\u201d, J. Vac. Sci. Technol. (B), 5, 1495 (1987)<br \/>\n171. W. A. Sanders and M. C. Lin, \u201cKinetics and Mechanisms of Methylidyne Radical Reactions\u201d, Chemical Kinetics of Small Organic Radicals Z. Alfassi, ed., CRC Press, vol. III, p. 103 (1988).<br \/>\n172. D. W. Squire, J. A. Dagata, D. S. Y. Hsu, C. S. Dulcey, and M. C. Lin, \u201cThermal Reactions of F2 and NF3 with Silicon (110) Studied by Laser Ionization Mass Spectrometry\u201d, J. Phys. Chem., 92, 2827 (1988).<br \/>\n173. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cKinetics of Hydroxyl Radical Reactions with Formaldehyde and 1, 3, 5-Trioxane between 290 and 600K\u201d, Int. J. Chem. Kinet., 20, 117 (1988).<br \/>\n174. D. S. Y. Hsu and M. C. Lin, \u201cA Comparison of the Rotational Energy Accommodation in OH and OD Desorbing from a Smooth Pt (111) Single Crystal\u201d, J. Chem. Phys., 88, 432 (1988).<br \/>\n175. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cKinetics of CH(X2\u03a0) Radical Reactions with Cyclopropane, Cyclopentanes, and Cyclohexane\u201d, J. Chem. Phys., 88, 5983 (1988).<br \/>\n176. J. S. Horwitz, C. S. Dulcey and M. C. Lin, \u201cREMPI\/MS Studies of SiF2 Production from the Thermal Reaction of F2 with Doped and Undoped Si (110)\u201d, Inst. Phys. Conf. Ser. No. 94, p. 121, 1988.<br \/>\n177. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cThe Reaction of OH and OD with Nitromethane and OD with Perdeuteronitromethane\u201d, Chem. Phys., 120, 319 (1988).<br \/>\n178. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cKinetics of CH Reactions with Fluoromethanes and Carbon Tetrachloride\u201d, J. Chem. Phys., 120, 311 (1988).<br \/>\n179. D. S. Y. Hsu, D. W. Squire and M. C. Lin, \u201cThe Rotational Energy Accommodation of the NO Formed in the Catalytic Oxidation of Ammonia Over Pt (111)\u201d, J. Chem. Phys., 89, 2861 (1988).<br \/>\n180. D. W. Squire, C. S. Dulcey and M. C. Lin, \u201cSurface Reactions in OMCVD: Detection of Gas Phase Radicals in GaAs Deposition under Single Gas-Surface Collision Conditions\u201d, Mat. Res. Soc. Proc., 101, 301 (1988).<br \/>\n181. Y. He, W. A. Sanders and M. C. Lin, \u201cThermal Decomposition of Methyl Nitrite: Kinetic Modeling of Detailed Product Measurements by GLC and FTIR\u201d, J. Phys. Chem., 92, 5474 (1988).<br \/>\n182. J. Horwitz, C. S. Dulcey and M. C. Lin, \u201cREMPI\/MS Detection of SiF2 Radicals by (1+3) and (3+1) Photoionization\u201d, Chem. Phys. Lett., 150, 165 (1988).<br \/>\n183. M. C. Lin, \u201cMultiphoton Ionization\/Mass Spectrometric Study of OMCVD Mechanisms Under Single Gas-Surface Collision Conditions\u201d, Proc. NATO Workshop on Mechanisms of Reactions of Organometallic Compounds with Surfaces, NATO ASI Series B, Vol. 198, D. J. Cole-Hamilton and J. O. Williams, eds., p. 191, Plenum, London, 1989.<br \/>\n184. T. Choudhury, W. A. Sanders and M. C. Lin, \u201cA Shock Tube and Modeling Study of the CH3+CH2O Reaction at High Temperatures\u201d, J. Phys. Chem., 93, 5143 (1989).<br \/>\n185. T. K. Choudhury and M. C. Lin, \u201cPyrolysis of Methyl Nitrite and 1,3,5-Trioxane Mixtures in Shock Waves: Kinetic Modeling of the H+CH20 Reaction Rate\u201d, Combust. Sci. Technol., 64, 19 (1989).<br \/>\n186. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cKinetics of CH Reactions with N2O, SO2, COS, CS2 and SF6\u201d, Int. J. Chem. Kinet., 21, 765 (1989).<br \/>\n187. M. Page, M. C. Lin, Y. He and T. Choudhury, \u201cKinetics of the Methoxy Radical Decomposition Reaction: Theory and Experiment\u201d, J. Phys. Chem., 93, 4404 (1989).<br \/>\n188. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cKinetics of Methylidyne (CH X2 ) Radical Reactions with Ammonia and Methylamines\u201d, Chem. Phys., 132, 407 (1989).<br \/>\n189. Y. He, E. Kolby, P. Shumaker and M. C. Lin, \u201cThermal Reaction of CH2O with NO2 in the Temperature Range of 393-476 K: FTIR Product Measurement and Kinetic Modeling\u201d, Int. J. Chem. Kinet., 21, 1015 (1989).<br \/>\n190. S. Zabarnick and M. C. Lin, \u201cKinetics of CN (X2\uf053+) Radical Reactions with HCN, BrCN and CH3CN\u201d, Chem. Phys., 134, 185 (1989).<br \/>\n191. T. K. Choudhury, W. A. Sanders and M. C. Lin, \u201cKinetic Modeling of Methyl Radical Reactions with Formaldehyde and Isobutane: Reinterpretation of Existing Data Obtained by Molecular Modulation Spectrometry\u201d, J. C. S. Faraday Trans. II., 85, 801 (1989).<br \/>\n192. N. S. Wang, D. L. Yang and M. C. Lin, \u201cKinetics of CN Radical Reactions with NOx between 297 and 740 K\u201d, Chem. Phys. Lett., 163, 480 (1989).<br \/>\n193. S. Cooper, M. E. Umstead, E. Kolby and M. C. Lin, \u201cRelative Rates of CH3NO2, CH3ONO and CH3ONO2 Formation in the Thermal Reaction of NO2 with CH3CHO and di-t-Butyl Peroxide at Low Temperatures\u201d, J. Energ. Mat., 7, 55 (1989).<br \/>\n194. L. V. Novakoski, D. S. Y. Hsu and M. C. Lin, \u201cRotational Energy Accommodation of OH Produced in the Catalytic Reaction of NO2 + H2 over Pt (111)\u201d, AIP Conf. Proc. No. 191, Opt. Sci. Eng. Ser. 10, Adv. Laser Sci. IV, p. 397, Am. Inst. Phys., 1989.<br \/>\n195. J. S. Horwitz, J. A. Dagata, D. W. Shinn and M. C. Lin, \u201cRotational Temperature of SiF2 Radical Produced in the Thermal Etching of Silicon by Fluorine Containing Compounds\u201d, AIP Conf. Proc. No. 191, Opt. Sci. Eng. Ser. 10, Adv. Laser Sci. IV, p. 445, Am. Inst. Phys., 1989.<br \/>\n196. E. Villa, J. A. Dagata and M. C. Lin, \u201cPhotochemistry of Ga (CH3) 3 at a Low Temperature Surface\u201d, AIP Conf. Proc. No. 191, Opt. Sci. Eng. Ser. 10, Adv. Laser Sci. IV, p. 379, Am. Inst. Phys., 1989.<br \/>\n197. E. Villa, J. A. Dagata and M. C. Lin, \u201cPhotochemistry of Adsorbed Phenyl Iodide: Desorption and Photofragmentation Dynamics by EI\/REMPI-TOF Measurement\u201d, J. Chem. Phys., 92, 1407 (1990).<br \/>\n198. T. K. Choudhury, Y. He, W. A. Sanders and M. C. Lin, \u201cCO Formation in Thermal Decomposition of CH3ONO at High Temperatures: Kinetic Modeling of the CH3O Decomposition Rate\u201d, J. Phys. Chem., 94, 2394 (1990).<br \/>\n199. C. H. Wu, C.-Y. Lin, H.-T. Wang and M. C. Lin, \u201cA Shock Tube Study of the Oxidation of the Methyl Radical\u201d, AIP Conference Proc. No. 208, Current Topics in Shock Waves, ed. Y. W. Kim, p. 450, 1990.<br \/>\n200. J. S. Horwitz and M. C. Lin, \u201cLaser and Mass Spectrometric Studies of Silicon Etching\u201d, Material Chemistry at High Temperatures, vol. 2, Processing and Performance, ed. J. W. Hastie, p. 265, Humana Press, Clifton, N. J., 1990. High Temp. Sci. 27, 266-278 (1990).<br \/>\n201. C.-Y. Lin, H.-T. Wang, M. C. Lin and C. F. Melius, \u201cA Shock Tube Study of the CH2O + NO2 Reaction at High Temperatures\u201d, Int. J. Chem. Kinet., 22, 455 (1990).<br \/>\n202. T. K. Choudhury and M. C. Lin, \u201cHomogeneous Pyrolysis of Acetylacetone at High Temperatures in Shock Waves\u201d, Int. J. Chem. Kinet., 20, 491 (1990).<br \/>\n203. C. H. Wu, H.-t. Wang, M. C. Lin and R. A. Fifer, \u201cKinetics of CO and H Atom Production from the Decomposition of HNCO in Shock Waves\u201d, J. Phys. Chem., 94, 3344 (1990).<br \/>\n204. T. K. Choudhury, M. C. Lin, C.-Y. Lin and W. A. Sanders, \u201cThermal Decomposition t-Butyl Alcohol in Shock Waves\u201d, Combust. Sci. Technol., 71, 219 (1990).<br \/>\n205. S.-P. Lee, T. Yu and M. C. Lin, \u201cEffects of Temperature and Lithium on CH3 Radical Formation in the CH4 Oxidation Coupling Reaction over MgO\u201d, Int. J. Chem. Kinet., 22, 975 (1990).<br \/>\n206. E. Villa, J. A. Dagata, J. S. Horwitz, D. W. Squire and M.C. Lin, \u201cProduction of CH3 Radicals from Hydrogenation of C2H2 over T\u00aca and W at High Temperatures\u201d, J. Vac. Sci. Technol., A8, 3237 (1990).<br \/>\n207. C. H. Hsu, C. S. Dulcey J. S. Horwitz and M. C. Lin, \u201cMass Spectrometric Characterization of Performance of a Low-Temperature Oxidation Catalyst\u201d, J. Mol. Catal. 60, 389 (1990).<br \/>\n208. Q. Sun, D. Yang, N. S. Wang, J. M. Bowman and M. C. Lin, \u201cExperimental and Reduced Dimensionality Quantum Rate Coefficients for H2(D2) + CN \uf0ae H(D)CN + H(D) \u201d, J. Chem. Phys., 93, 4730 (1990).<br \/>\n209. J. A. Dagata, E. Villa and M. C. Lin, \u201cUV Desorption and Photochemistry of (CH3)2 Au (hfacac) Adsorbed on a Quartz Substrate\u201d, Appl. Phys. B51 (Photophys. and Laser Chem.), 443 (1990).<br \/>\n210. S. Zabarnick, J. W. Fleming and M. C. Lin, \u201cDirect Measurement of Rate Constant for the Reactions of CH and CD with HCN and DCN\u201d, Chem. Phys., 150, 109 (1991).<br \/>\n211. N. S. Wang, D. L. Yang, M. C. Lin and C. F. Melius, \u201cKinetics of CN Reactions with N2O and CO2\u201d, Int. J. Chem. Kinet., 23, 151 (1991).<br \/>\n212. K. H. Aldridge, X. Liu, M. C. Lin and C. F. Melius, \u201cThermal Unimolecular Decomposition of 1,3,5-Trioxane: Comparison of Theory and Experiment\u201d, Int. J. Chem. Kinet., 23, 947 (1991).<br \/>\n213. Y. He, X. Liu, M. C. Lin and C. F. Melius, \u201cThe Thermal Reaction of HNCO at Moderate Temperatures\u201d, Int. J. Chem. Kinet., 23, 1129 (1991).<br \/>\n214. J. C. S. Chu, J. Breslin, N. S. Wang and M. C. Lin, \u201cRelative Stabilities of Tetramethyl and Tetraethyl Orthosilicates in the Gas Phase\u201d, Mater. Lett., 12, 179 (1991).<br \/>\n215. C. H. Wu, Y. He and M. C. Lin, \u201cKinetics and Mechanism of the HNCO deNOx Process at High Temperatures\u201d, Proc. of 1st Int. Conf. on Combust. Technol. for a Clean Environ., Reaction Fundamentals II. p. 19-25, 1991. Also appeared in Energy, Combustion and the Environment, vol. 1, Combustion Technologies for a Clean Environment, Eds. M. da Graco Carvalho, W. H. Fiveland, F. C. Lockwood and C. Papadopoulos, pp. 743-756, 1995.<br \/>\n216. M. C. Lin, Y. He and C. F. Melius, \u201cTheoretical Interpretation of the Kinetics and Mechanisms of the HNO + HNO and HNO + 2NO Reactions with a Unified Model\u201d, Int. J. Chem. Kinet., 24, 489 (1992).<br \/>\n217. Y. Bu, J. C. S. Chu and M. C. Lin, \u201cTemperature Dependence of the UPS and HREELS of HN3 and DN3 on Si (110)\u201d, Surf. Sci. Lett., 264, L151 (1992).<br \/>\n218. D. L. Yang, T. Yu, N. S. Wang and M. C. Lin, \u201cTemperature Dependence of Cyanogen Radical Reactions with Selected Alkanes: CN Reactivities Towards Primary, Secondary and Tertiary C-H Bonds\u201d, Chem. Phys., 160, 307 (1992).<br \/>\n219. D. L. Yang, T. Yu, N. S. Wang and M. C. Lin, \u201cCN Radical Reactions with Selected Olefins in the Temperature Range 174-740 K\u201d, Chem. Phys. 160, 317 (1992).<br \/>\n220. Y. He and M. C. Lin, \u201cEffects of Nitric Oxide on the Thermal Decomposition of Methyl Nitrite: Overall Kinetics and Rate Constants for HNO + HNO and HNO + 2NO Reactions\u201d, Int. J. Chem. Kinet. 24, 743 (1992).<br \/>\n221. T. Yu, D. L. Yang and M. C. Lin, \u201cKinetics of CN Radical Reactions with Selected Cycloalkanes: CN Reactivity Towards Secondary C-H Bonds\u201d, Chem. Phys., 162, 449 (1992)<br \/>\n222. D. L. Yang, T. Yu, M. C. Lin and C. F. Melius, \u201cCN Radical Reactions with Hydrogen Cyanide and Cyanogen: Comparison of Theory and Experiment\u201d, J. Chem. Phys., 97, 222 (1992).<br \/>\n223. Y. He, M. C. Lin, C. H. Wu and C. F. Melius, \u201cThe Reaction of HNCO with NO2 in Shock Waves\u201d, 24th Symposium (International) on Combustion, The Combustion Institute, Pittsburgh, 1992, p. 711.<br \/>\n224. J. C. S. Chu, Y. Bu and M. C. Lin, \u201cSpectroscopy and Reactions of Hydrazoic Acid on Silicon Single Crystal Surfaces (II). HN3 and DN3 on Si(100)\u201d, Proc. 6th Int. Electronic Mat. and Processes Conference, p. 31-41, Baltimore, MD., June 23-25, 1992.<br \/>\n225. Y. Bu, J. C. S. Chu and M. C. Lin, \u201cDecomposition of TMIn on Si(111)-7&#215;7 Studied with XPS, UPS and HREEL\u201d, Mat. Lett., 14, 207 (1992).<br \/>\n226. M. C. Lin, Y. He and C. F. Melius, \u201cImplications of the HCN \uf0ae HNC Process to High-Temperature Nitrogen-Containing Fuel Chemistry\u201d, Int. J. Chem. Kinet., 24, 1103 (1992).<br \/>\n227. Y. Bu, D. W. Shinn and M. C. Lin, \u201cAdsorption and Thermal Decomposition of N2H4 and CH3N2H3 on Si (111)-7&#215;7\u201d, Surf. Sci., 276, 184 (1992).<br \/>\n228. J. A. Tarr, S.-P. Lee and M. C. Lin, \u201cUV Photochemistry of Trivinylantimony Adsorbed on Quartz\u201d, Mat. Chem. Phys., 33, 93 (1993).<br \/>\n229. Y. Bu, Jason C. S. Chu, D. W. Shinn and M. C. Lin, \u201cAdsorption and Decomposition of Trimethyl Indium on Si (110)\u201d, Mat. Chem. Phys., 33, 99 (1993)<br \/>\n230. M. T. Butterfield, T. Yu and M. C. Lin, \u201cKinetics of CN Reactions with Allene, Butadiene, Propylene and Acrylonitrile\u201d, Chem. Phys., 169, 129 (1993).<br \/>\n231. J. C. S. Chu, Y. Bu and M. C. Lin, \u201cSpectroscopy and Reactions of Hydrazoic Acid on Silicon Single Crystal Surfaces. (III). HN3 and DN3 on Si(111)-7&#215;7\u201d, Surf. Sci., 284, 281 (1993).<br \/>\n232. Y. Bu, J. C. S. Chu and M. C. Lin, \u201cThermal Stability of Trimethyl Indium on Si(100)-2&#215;1 as Studied by HREELS, UPS and XPS: A Comparison with the Results from Si(111)-7&#215;7 and Si(100) Surfaces\u201d, Surf. Sci., 285, 243 (1993).<br \/>\n233. T. Yu and M. C. Lin, \u201cKinetics of Phenyl Radical Reactions Studied by the &#8220;Cavity-Ring-Down&#8221; Method\u201d, J. Am. Chem. Soc. 115, 4371 (1993)<br \/>\n234. Y. He, X. Liu, M.C. Lin and C.F. Melius, \u201cThermal Reaction of HNCO with NO2 at Moderate Temperatures\u201d, Int. J. Chem. Kinet., 25, 845 (1993).<br \/>\n235. D. L. Yang, T. Yu, M. C. Lin and C.F. Melius, \u201cThe Reaction of CN with CH4 and CD4: An Experimental and Theoretical Study\u201d, Chem. Phys., 177, 271 (1993).<br \/>\n236. M. C. Lin and T. Yu, \u201cKinetics of the Reaction of C6H5 with HBr\u201d, Int. J. Chem. Kinet., 25, 875 (1993).<br \/>\n237. M. C. Lin, Y. He and C. F. Melius, \u201cTheoretical Aspects of Product Formation from the NCO + NO Reaction\u201d, J. Phys. Chem., 97, 9124 (1993).<br \/>\n238. Y. Bu, L. Ma and M. C. Lin, \u201cInteraction of HCN\/DCN with Si(100)-2&#215;1\u201d, J. Phys. Chem., 97, 7081 (1993).<br \/>\n239. Y. Bu and M. C. Lin, \u201cInteraction of CO with Silicon Single Crystal Surfaces Studied by UPS, HREELS and TPD\u201d, Surf. Sci., 298, 94 (1993).<br \/>\n240. Y. Bu, L. Ma and M. C. Lin, \u201cInteraction of HCN(DCN) with Si(111)-7&#215;7 Studied with HREELS, UPS and XPS\u201d, J. Phys. Chem., 97, 11797 (1993).<br \/>\n241. Y. Bu, L. Ma and M.C. Lin, \u201cLaser-Assisted Chemical Vapor Deposition of InN on Si(100) \u201d, J. Vac. Sci. Technol., A11, 2931 (1993).<br \/>\n242. D. L. Yang, T. Yu and M.C. Lin, \u201cKinetics of CN Reactions Formaldehyde and 1,3,5-Trioxane\u201d, Int. J. Chem. Kinet., 25, 1053 (1993).<br \/>\n243. Y. Bu and M. C. Lin, \u201cThe 308-nm Laser Photodissociation of HN3 Adsorbed on Si(111)-7&#215;7\u201d, Surf. Sci., 301, 118 (1994).<br \/>\n244. T. Yu and M. C. Lin, \u201cKinetics of the C6H5 + NO Association Reaction\u201d, J. Phys. Chem., 98, 2105 (1994).<br \/>\n245. Y. Bu and M. C. Lin, \u201cSurface Chemistry of N2H4 on Si(100)-2&#215;1\u201d, Surf. Sci., 311, 385 (1994).<br \/>\n246. Y. Bu and M. C. Lin, \u201cNitridation of GaAs Single Crystal Surfaces Using Hydrazoic Acid and 308-nm Photon Beams\u201d, Surf. Sci., 317, 152 (1994).<br \/>\n247. E. W. G. Diau, T. Yu, M. A. G. Wagner and M.C. Lin, \u201cKinetics of the NH2 + NO Reaction: Effects of Temperature on the Total Rate Constant and the OH\/H2O Branching Ratio\u201d, J. Phys. Chem., 98, 4034 (1994).<br \/>\n248. T. Yu and M. C. Lin, \u201cKinetics of the Reaction of C6H5 with HBr and DBr\u201d, Int. J. Chem. Kinet., 26, 771 (1994).<br \/>\n249. T. Yu and M. C. Lin, \u201cKinetics of the C6H5 + CCl4 Reaction in the Gas Phase: Comparison with Liquid-Phase Data\u201d, J. Phys. Chem., 98, 9697 (1994).<br \/>\n250. T. Yu, M. C. Lin and C. F. Melius, \u201cAbsolute Rate Constant for the Reaction of Phenyl Radical with Acetylene\u201d, Int. J. Chem. Kinet., 26, 1095 (1994).<br \/>\n251. Y. Bu and M. C. Lin, \u201cLPCVD of InN on GaAs(110) using HN3 and TMIn: Comparison with Si(100) Results\u201d, Mat. Res. Soc., Proc., 335, 21 (1994).<br \/>\n252. Y. Bu and M. C. Lin, \u201cThermal Dissociation of NH2CHO(ND2CDO) on Si(100)-2&#215;1\u201d, Langmuir, 10, 3621 (1994).<br \/>\n253. E. W. Diau, M. C. Lin and C. F. Melius, \u201cA Theoretical Study of the CH3 + C2H2 Reaction\u201d, J. Chem. Phys., 101, 3923 (1994).<br \/>\n254. A. M. Mebel, K. Morokuma and M. C. Lin, \u201cAb Initio Molecular Orbital Study of Potential Energy Surface for the NH + NO2 Reaction\u201d, J. Chem. Phys., 101, 3916 (1994).<br \/>\n255. Y. Bu and M. C. Lin, \u201cSurface Chemistry of s-Triazine on Si(100)-2&#215;1\u201d, J. Phys. Chem., 98, 7871 (1994).<br \/>\n256. T. Yu and M.C. Lin, \u201cKinetics of the C6H5 + O2 Reaction at Low Temperatures\u201d, J. Am. Chem. Soc., 116, 9571 (1994).<br \/>\n257. A.M. Mebel and M.C. Lin, \u201cAb Initio Molecular Orbital Calculations of C6H5O2 Isomers\u201d, J. Am. Chem. Soc., 116, 9577 (1994).<br \/>\n258. S.-P. Lee and M. C. Lin, \u201cLaser-Induced Decomposition of Dimethyl Cadmium on a Quartz Substrate\u201d, Appl. Surf. Sci., 84, 31 (1995)<br \/>\n259. T. Yu, A.M. Mebel and M.C. Lin, \u201cReaction of Phenoxy Radical with Nitric Oxide\u201d, J. Phys. Org. Chem., 8, 47 (1995).<br \/>\n260. Y. Bu, L. Ma and M.C. Lin, \u201cThermal Decomposition of C2N2 on Si (100)-2&#215;1 and Si(111)-7&#215;7\u201d, J. Phys. Chem. 99 1046 (1995) .<br \/>\n261. J. C. S. Chu, R. Soller, M. C. Lin and C. F. Melius, \u201cThermal Decomposition of Tetramethyl Orthosilicate in the Gas Phase: An Experimental and Theoretical Study of the Initiation Process\u201d, J. Phys. Chem., 99, 663 (1995).<br \/>\n262. T. Yu and M.C. Lin, \u201cKinetics of the Phenyl Radical Reaction with Ethylene: An RRKM Theoretical Analysis of Low and High Temperature Data\u201d, Combust. Flame, 100, 169 (1995).<br \/>\n263. A.M. Mebel, K. Morokuma, M. C. Lin and C.F. Melius, \u201cPotential Energy Surface of the HNO + NO Reaction. An ab Initio Molecular Orbital Study\u201d, J. Phys. Chem., 99, 1900 (1995).<br \/>\n264. Y. Bu, M. C. Lin, A.D. Berry and D. G. Hendershot, \u201cLow pressure chemical vapor deposition of InSb using neopentylstibine and trimethylindium\u201d, J. Vac. Sci. Technol. A 13(2), Mar\/Apr 230 (1995).<br \/>\n265. E. W. G. Diau, M. C. Lin, Y. He and C. F. Melius, \u201cTheoretical Aspects of the H\/N\/O-Chemistry Relevant to the Thermal Reduction of NO by H2\u201d, Prog. in Energy and Combust. Sci., 21, 1 (1995).<br \/>\n266. E. W. G. Diau and M. C. Lin, \u201cA Theoretical Study of H(D) + N2O: Effects of Pressure, Temperature, and Quantum-Mechanical Tunneling on H(D)-Atom Decay and OH(D)-Radical Production\u201d, J. Phys. Chem., 99, 6589 (1995).<br \/>\n267. A. M. Mebel, M. C. Lin, K. Morokuma and C.F. Melius, \u201cTheoretical Study of the Gas-Phase Structure, Thermochemistry, and Decomposition Mechanisms of NH4NO2 and NH4N(NO2) 2\u201d, J. Phys. Chem., 99, 6842 (1995).<br \/>\n268. Y. Bu, M. C. Lin, L. P. Fu, D. G. Chtchekine, G. D. Gilliland, Y. Chen, S. E. Ralph and J. R. Stock, \u201cOptical Properties of GaN Epitaxial Films Grown by Low-Pressure Chemical Vapor Epitaxy Using a New Nitrogen Source: Hydrazoic Acid (HN) 3\u201d, Phys. Lett., 66, 2433 (1995).<br \/>\n269. T. Yu and M. C. Lin, \u201cKinetics of Phenyl Radical Reactions with Selected Cycloalkanes and Carbon Tetrachloride\u201d, J. Phys. Chem., 99, 8599 (1995).<br \/>\n270. Y. Bu and M. C. Lin, \u201cLow Pressure Chemical Vapor Deposition of III\/V-Nitrides Using Organometallics and Hydrazoic Acid Precursors\u201d, J. Chin. Chem. Soc. (Taiwan), 42, 423 (1995).<br \/>\n271. Y. Bu and M. C. Lin, \u201cThe Adsorption and Thermal Decomposition of CH2CO(CD2CO) on Si (111)-7&#215;7\u201d, J. Chin. Chem. Soc. (Taiwan), 42, 309 (1995).<br \/>\n272. M. C. Lin and A. M. Mebel, \u201cAb Initio Molecular Orbital Study of the O + C6H5O Reaction\u201d, J. Phys. Org. Chem., 8, 407 (1995).<br \/>\n273. E. W. G Diau, M. J. Halbgewachs, A. R. Smith and M. C. Lin, \u201cThermal Reduction of NO by H2: Kinetic Modeling of the HNO + NO Reaction\u201d, Int. J. Chem. Kinet., 27, 867 (1995).<br \/>\n274. E. W. G. Diau and M. C. Lin, \u201cKinetic Modeling of he CH3 + C2H2 Reaction Data with Sensitivity Analyses\u201d, Int. J. Chem. Kinet., 27, 855 (1995).<br \/>\n275. Y. He, C. H. Wu, M. C. Lin and C.F. Melius, \u201cThe Reaction of CN with NO at High Temperatures in Shock Waves\u201d, Shock Waves @ Marseille II. Physico-Chemical Processes, R. Brun and L. Z. Dumitrescu, Eds., Springer, p. 89-94, 1995.<br \/>\n276. A. M. Mebel, K. Morokuma and M. C. Lin, \u201cModification of the Gaussian-2 Theoretical Model: The Use of Coupled Cluster Energies, Density Functional Geometries and Frequencies\u201d, J. Chem. Phys.,103, 7414 (1995).<br \/>\n277. A. M. Mebel, K. Morokuma and M. C. Lin, \u201cAb Initio Molecular Orbital Study of Potential Energy Surface for the Reaction of C2H3 with H2\u201d, J. Chem. Phys., 103, 3440 (1995).<br \/>\n278. A. M. Mebel, C.-C. Hsu, M. C. Lin and K. Morokuma, \u201cAn ab initio molecular orbital study of potential energy surface of the NH2+NO2 reaction\u201d, J. Chem. Phys., 103, 5640 (1995).<br \/>\n279. J. Park and M. C. Lin, \u201cDirect Determination of Product Branching for the NH2 + NO Reaction at Temperatures between 302 and 1,060 K\u201d, J. Phys. Chem., 100, 3317 (1996).<br \/>\n280. D. L. Yang and M. C. Lin, \u201cThe Reactions of the CN Radical with Molecules Relevant to Combustion and Atmospheric Chemistry\u201d, The Chemical Dynamics and Kinetics of Small Molecules, K. Liu and A.F. Wagner, eds., Part I, Chapter 5, pp. 164-213, World Scientific Pub. Co., Singapore, 1996.<br \/>\n281. L. C. Chen, C. Y. Yang, D. M. Bhusari, K. H. Chen, M. C. Lin, J. C. Lin and T. J. Chuang, \u201cFormation of Crystalline Silicon Carbon Nitride Films by Microwave Plasma-Enhanced Chemical Vapor Deposition\u201d, Diamond and Related Mater., 5, 514 (1996).<br \/>\n282. A. M. Mebel, E. W. G. Diau, M. C. Lin and K. Morokuma, \u201cTheoretical Rate Constants for the NH3 + NOx \uf0ae NH2 + HNOx (x=1,2) Reactions by ab initio MO\/VTST calculations\u201d, J. Phys. Chem., 100, 7517 (1996).<br \/>\n283. K. Watanabe, M. C. Lin, Y. A. Gruzdkov and Y. Matsumoto, \u201cMechanism for the Desorption of Molecularly and Dissociatively Adsorbed Methane on Pt(111) by Pulse-Laser Heating\u201d, J. Chem. Phys., 104, 5974 (1996).<br \/>\n284. A. M. Mebel, M. C. Lin, K. Morokuma and C. F. Melius, \u201cTheoretical Study of Reactions of N2O with NO and OH Radicals\u201d, Int. J. Chem. Kinet., 28, 693 (1996).<br \/>\n285. Ruifeng Liu, Keiji Morokuma, Alexander M. Mebel and M. C. Lin, \u201cAb Initio Study of the Mechanism for the Thermal Decomposition of the Phenoxy Radical\u201d, J. Phys. Chem., 100, 9314 (1996).<br \/>\n286. A. M. Mebel, A. Luna, M. C. Lin and K. Morokuma, \u201cA Density Functional Study of the Global Potential Energy Surfaces of the [H, C, N, O] System in the Singlet and Triplet States\u201d, J. Chem. Phys., 105, 6439 (1996).<br \/>\n287. J. Park and M. C. Lin, \u201cMass-Spectrometric Determination of Product Branching Probabilities in the NH2 + NO2 Reaction at Temperatures between 300 and 990 K\u201d, Int. J. Chem. Kinet., 28, 879 (1996).<br \/>\n288. C.-C. Hsu, A. M. Mebel and M. C. Lin, \u201cAb Initio Molecular Orbital Study of the HCO + O2 Reaction: Direct vs. Indirect Abstraction Channels\u201d, J. Chem. Phys., 105, 2346 (1996).<br \/>\n289. A. M. Mebel, E. W. G. Diau, M. C. Lin and K. Morokuma, \u201cAb Initio and RRKM Calculations for Multichannel Rate Constants of the C2H3 + O2 Reaction\u201d, J. Am. Chem. Soc., 118, 9759 (1996).<br \/>\n290. L. V. Moskaleva, A. M. Mebel and M. C. Lin, \u201cThe CH3 + C5H5 Reaction: A Potential Source of Benzene at High Temperatures\u201d, 26th Symposium (International) on Combustion, The Combustion Institute, Pittsburgh, p. 521, 1996.<br \/>\n291. M. J. Halbgewachs, E. W. G. Diau, A. M. Mebel, M. C. Lin and C. F. Melius, \u201cThermal Reduction of NO by NH3: Kinetic Modeling of the NH2 + NO Product Branching Ratio\u201d, 26th Symposium (International) on Combustion, The Combustion Institute, Pittsburgh, p. 2109 (1996).<br \/>\n292. L. K. Madden, A. M. Mebel, M. C. Lin and C. F. Melius, \u201cA Theoretical Study of the Thermal Isomerization of Fulvene to Benzene\u201d, J. Phys. Org. Chem., 9, 801 (1996).<br \/>\n293. J. Park and M. C. Lin, \u201cLaser-Initiated NO Reduction by NH3: Total Rate Constant and Product Branching Ratio Measurements for the NH2 + NO Reaction\u201d, J. Phys. Chem. A, 101, 5 (1997).<br \/>\n294. J. Park and M. C. Lin, \u201cKinetics for the Recombination of Phenyl Radicals\u201d, J. Phys. Chem. A, 101, 14 (1997).<br \/>\n295. C.-C. Hsu, M. C. Lin, A. M. Mebel and C.F. Melius, \u201cAb Initio Study of the H + HONO Reaction: Direct Abstraction versus Indirect Exchange Processes\u201d, J. Phys. Chem. A, 101, 60 (1997).<br \/>\n296. D. G. Chtchekine, L. P. Fu, G. D. Gilliland, Y. Chen, S. E. Ralph, K. K. Bajaj, Y. Bu, M.C. Lin, F. T. Bacalzo and S. R. Stock, \u201cProperties of Low-Pressure Chemical Vapor Epitaxial GaN Films Grown Using Hydrazoic Acid (HN3)\u201d, J. Appl. Phys., 81, 2197 (1997).<br \/>\n297. J. W. Boughton, S. Kristyan and M. C. Lin, \u201cTheoretical Study of the Reaction of Hydrogen with Nitric Acid: Ab Initio MO and TST\/RRKM Calculations\u201d, Chem. Phys., 214, 219 (1997).<br \/>\n298. D. M. Bhusari, C. K. Chen, K. H. Chen, T. J. Chuang, L. C. Chen and M. C. Lin, \u201cComposition of SiCN Crystals Consisting of a Predominantly Carbon-Nitride Network\u201d, J. Mater. Res., 12, 322 (1997).<br \/>\n299. A. Grant Thaxton, C.-C. Hsu and M. C. Lin, \u201cRate Constant for the NH3 + NO2 NH2 + HONO Reaction: Comparison of Kinetically Modeled and Predicted Results\u201d, Int. J. Chem. Kinet., 29, 245 (1997).<br \/>\n300. Y. Bu, J. Breslin and M. C. Lin, \u201cAdsorption and Thermal Decomposition of Acetaldehyde on Si (111)-7&#215;7\u201d, J. Phys. Chem. B, 101, 1872 (1997).<br \/>\n301. A. M. Mebel and M. C. Lin, \u201cReactions of NOx with Nitrogen Hydrides\u201d, Int. Rev. Phys. Chem., 16, 249 (1997).<br \/>\n302. J. Park and M. C. Lin, \u201cA Mass-Spectrometric Study of the NH2 + NO2 reaction\u201d, J. Phys. Chem. A, 101, 2643 (1997).<br \/>\n303. L. C. Chen, D. M. Bhusari, C. Y. Yang, K. H. Chen, T. J. Chuang and M. C. Lin, \u201cSi-Containing Crystalline Carbon Nitride Derived by Microwave Plasma-Enhanced Chemical Vapor Deposition\u201d, Thin Solid Films, 303, 66 (1997).<br \/>\n304. A. M. Mebel, M. C. Lin, T. Yu and K. Morokuma, \u201cTheoretical Study of Potential Energy Surface and Thermal Rate Constants for the C6H5 + H2 and C6H6 + H Reactions\u201d, J. Phys. Chem. A, 101, 3189 (1997).<br \/>\n305. L. K. Madden, L. V. Moskaleva, S. Kristyan and M. C. Lin, \u201cAb Initio MO Study of the Unimolecular Decomposition of the Phenyl Radical\u201d, J. Phys. Chem. A, 101, 6790 (1997).<br \/>\n306. J. Park, I. V. Dyakov, A. M. Mebel and M. C. Lin, \u201cExperimental and Theoretical Studies of the Unimolecular Decomposition of Nitrosobenzene: High-Pressure Rate Constants and the C-N Bond Strength\u201d, J. Phys. Chem. A, 101, 6043 (1997).<br \/>\n307. J. Park, I. V. Dyakov, and M. C. Lin, \u201cFTIR and Mass-Spectrometry Measurements of the Rate Constant for the C6H5 + H2 Reaction\u201d, J. Phys. Chem. A, 101, 8839 (1997).<br \/>\n308. C.-C. Hsu, J. W. Boughton, A. M. Mebel and M. C. Lin, \u201cTheoretical Study of HONO Reactions with H, OH, NO and NH2 Radicals\u201d, in Challenges in Propellants and Combustion: 100 Years after Nobel, Begell House, Inc., New York, pp. 48-57, Aug. 1997.<br \/>\n309. I. V. Tokmakov, C.-C. Hsu, L. V. Moskaleva and M. C. Lin, \u201cThermal Decomposition of Formic Acid in the Gas Phase: Bimolecular and H2O-Catalyzed Reactions\u201d, Mol. Phys., 92, 581 (1997).<br \/>\n310. A. G. Thaxton, M. C. Lin, C. -Y. Lin and C. F. Melius, \u201cThermal Oxidation of HCN Oxidation by NO2 at High Temperature\u201d, In Shock Waves (ISSW21), A. F. P. Houwing, editor-in-chief, Vol. I, pp. 245-250, Australia, 1997.<br \/>\n311. A. M. Mebel, M. C. Lin and C. F. Melius, \u201cRate Constant of the HONO + HONO H2O + NO + NO2 Reaction from ab Initio MO and TST Calculations\u201d, J. Phys. Chem. A, 102, 1803 (1998).<br \/>\n312. R. N. Musin and M. C. Lin, \u201cNovel Bimolecular Reactions Between NH3 and HNO3 in the Gas Phase\u201d, J. Phys. Chem. A, 102, 1808 (1998).<br \/>\n313. L. V. Moskaleva and M. C. Lin, \u201cA Theoretical Study of the NH2 + C2H2 Reaction\u201d, J. Phys. Chem. A, 102, 4687 (1998).<br \/>\n314. D. Chakraborty, J. Park and M. C. Lin, \u201cTheoretical Study of the OH + NO2 reaction: formation of nitric acid and the hydroperoxyl radical\u201d, Chem. Phys., 231, 39 (1998).<br \/>\n315. A. M. Mebel, M. C. Lin and K. Morokuma, \u201cAb initio MO and TST Calculations for the Rate Constant of the HNO + NO2 = HONO + NO reaction\u201d, Int. J. Chem. Kinet., 30, 729 (1998).<br \/>\n316. S. J. Klippenstein, D. L. Yang, T. Yu, S. Kristyan and M. C. Lin, \u201cA Theoretical and Experimental Study of the CN + NO Association Reaction\u201d, J. Phys. Chem. A, 102, 6973 (1998).<br \/>\n317. A. M. Mebel, L. V. Moskaleva and M. C. Lin, \u201cReactions of NH2 in the Gas Phase\u201d, N-Centered Radicals, Z. B. Alfassi, ed., Wiley &amp; Sons, NY, Chapter 14, pp. 467-514, 1998.<br \/>\n318. F. T. Bacalzo, D. G. Musaev, and M. C. Lin, \u201cTheoretical Studies of CO Adsorption on Si(100)-2&#215;1 Surface\u201d, J. Phys. Chem. B, 102, 2221 (1998).<br \/>\n319. D. Chakraborty, C. -C. Hsu and M. C. Lin, \u201cTheoretical Studies of Nitroamino Radical Reactions: Rate Constants for the Unimolecular Decomposition of HNNO2 and Related Bimolecular Processes\u201d, J. Chem. Phys., 109, 8889 (1998).<br \/>\n320. S. Kristyan and M. C. Lin, \u201cTheoretical calculations for the kinetics of the HN+NO reaction\u201d, Chem. Phys. Lett., 29, 200 (1998).<br \/>\n321. J. Park, D. Chakraborty and M. C. Lin, \u201cThermal Decomposition of Gaseous ADN: Kinetic Modeling of Product Formation with ab initio MO\/RRKM Calculations\u201d, 27th Symp. (Int.) on Combustion, 1998, pp. 2351-2357.<br \/>\n322. J. Park and M. C. Lin, \u201cKinetic Applications of the Pulsed Laser Photolysis\/Mass Spectrometric Technique\u201d, Trends in Chemical Physics, 2, 965-979 (1998).<br \/>\n323. J. Park, Nevia D. Giles, Jesse Moore and M. C. Lin, \u201cA Comprehensive Kinetic Study of Thermal Reduction of NO2 by H2\u201d, J. Phys. Chem. A, 102, 10099 (1998).<br \/>\n324. J. Park and M. C. Lin, \u201cKinetic Studies of Aromatic Radical Reactions by Cavity Ringdown Spectrometry\u201d, ACS Publication Series 720, 196-209 (1999).<br \/>\n325. M. D. Brioukov, J. Park and M. C. Lin, \u201cKinetic Modeling of Benzene Decomposition near 1000 K: The Effects of Toluene Impurity\u201d, Int. J. Chem. Kinet., 31, 577-582 (1999).<br \/>\n326. A. M. Mebel, L. V. Moskaleva and M. C. Lin, \u201cAb Initio MO Calculations for the Reactions of NH2 with H2, H2O, NH2 and CH4: Prediction of Absolute Rate Constants and Kinetic Isotope Effects\u201d, J. Mol. Struct. (THEOCHEM), 461\/462, 223-238 (1999).<br \/>\n327. F. Bacalzo-Gladden, D. G. Musaev and M. C. Lin, \u201cA Model Calculation for the Isomerization and Decomposition of Chemisorbed HCN on the Si(100)-2&#215;1 Surface\u201d, J. Chinese Chemical Society (Taiwan), 46, 395 (1999).<br \/>\n328. A. M. Mebel and M. C. Lin, \u201cPrediction of absolute rate constants for the reactions of NH2 with alkanes from ab initio G2M\/TST calculations\u201d, J. Phys. Chem. A, 103, 2088-2096 (1999).<br \/>\n329. D. Chakraborty and M. C. Lin, \u201cTheoretical Studies of Methyleneamino (CH2N) Radical Reactions: (I) Rate Constant and product Branching for the CH2N + N2O Process by Ab Initio MO\/Statistical Theory Calculations\u201d, J. Phys. Chem. A, 103, 601-606 (1999).<br \/>\n330. V. Tokmakov, J. Park, S. Gheyas and M. C. Lin, \u201cExperimental and Theoretical Studies of the Reaction of Phenyl Radical with Methane\u201d, J. Phys. Chem. A, 103, 3636-3645 (1999).<br \/>\n331. R. N. Musin, D. G. Musaev and M. C. Lin, \u201cQuantum-Chemical Study of the Structure and Properties of Hypothetical Superhard Materials Based on the Cubic Silicon-Carbon Nitrides\u201d, J. Phys. Chem. B, 103, 797-803 (1999).<br \/>\n332. F. Bacalzo-Gladden and M. C. Lin, \u201cA Model Study of CO-CO Adsorbate Interaction on Si(100)-2&#215;1\u201d, J. Phys. Chem. B, 103, 7270-7276 (1999).<br \/>\n333. J. Park, D. Chakraborty, D. M. Bhusari and M. C. Lin, \u201cKinetics of C6H5 Radical Reactions with Toluene and Xylenes by Cavity Ringdown Spectrometry\u201d, J. Phys. Chem. A, 103, 4002 (1999).<br \/>\n334. J. Park, S. I. Gheyas and M. C. Lin, \u201cKinetics of C6H5 Radical Reactions with 2-methylpropane, 2,3-dimethylbutane and 2,3,4-trimethylpentane\u201d, Int. J. Chem. Kinet. 31, 645-53 (1999)<br \/>\n335. L. V. Moskaleva, L. K. Madden and M. C. Lin, \u201cUnimolecular Isomerization\/ Decomposition of ortho-Benzyne: Ab Initio MO\/Statistical Theory Study\u201d, Phys. Chem. Chem. Phys., 1, 3967 (1999).<br \/>\n336. J. Park, S. Burova, A. S. Rodgers and M. C. Lin, \u201cExperimental and Theoretical Studies of the C6H5 + C6H6 Reaction\u201d, J. Phys. A, 103, 9036-41 (1999).<br \/>\n337. J. Park and M. C. Lin, \u201cProduct Branching Ratios in the NH2 + NO Reaction: A Re-evaluation\u201d, J. Phys. Chem. A 103, 8906-07 (1999).<br \/>\n338. L. V. Moskaleva and M. C. Lin, \u201cUnimolecular Isomerization\/Decomposition of Cyclopentadienyl and Related Bimolecular Reverse Process: Ab Initio MO\/Statistical Theory Study\u201d, J. Comput. Chem., 21, 415 (2000).<br \/>\n339. D. Chakraborty and M. C. Lin, \u201cGas Phase Chemical Kinetics of [C, H, N, O]-Systems Relevant to the Combustion of Nitramines in Their Early Stages\u201d, in Solid Propellant Chemistry, Combustion, and Motor Interior Ballistics, Progress in Astronautics and Aeronautics, eds. V. Yang, T. B. Brill and W. Z. Ren, vol. 185, American Institute of Aeronautics and Astronautics, Reston, VA, pp. 33-71, 2000.<br \/>\n340. G.-J. Nam, W. Xia, J. Park and M. C. Lin, \u201cThe Reaction of C6H5 with CO: Kinetic Measurement and Theoretical Correlation with the Reverse Process\u201d, J. Phys. Chem. A, 104, 1233-39 (2000).<br \/>\n341. Y. M. Choi, W. S. Xia, J. Park and M. C. Lin, \u201cKinetics and Mechanism for the Reaction of Phenyl Radical with Formaldehyde\u201d, J. Phys. Chem. A, 104, 7030-35 (2000).<br \/>\n342. X. Lu, R. N. Musin and M. C. Lin, \u201cGas-Phase Reactions of HONO with HNO and NH3: An Ab Initio MO\/TST Study\u201d, J. Phys. Chem. A, 104, 5141-48 (2000).<br \/>\n343. X. Lu, J. Park and M. C. Lin, \u201cGas-Phase Reactions of HONO with NO2, O3 and HCl: An Ab Initio MO\/TST Study\u201d, J. Phys. Chem. A, 104, 8730-38 (2000).<br \/>\n344. X. Lu and M. C. Lin, \u201cBonding Configurations of Acetylene Adsorbed on the Si(100)-2&#215;1 Surface Predicted by Density Functional Cluster Model Calculations\u201d, Phys. Chem. Chem. Phys., 2, 4213 (2000).<br \/>\n345. Rongshun Zhu and M. C. Lin, \u201cThe NCO + NO Reaction Revisited: Ab Inito MO\/VRRKM Calculations for Total Rate Constant and Product Branching Ratios\u201d, J. Phys. Chem. A, 104, 10807 (2000).<br \/>\n346. L. V. Moskaleva, W. S. Xia and M. C. Lin, \u201cThe CH + N2 Reaction over the Ground Electronic Doublet Potential Energy Surface: A Detailed Transition State Search\u201d, Chem. Phys. Lett., 331, 269-77 (2000).<br \/>\n347. W. S. Xia and M. C. Lin, \u201cA Computational Study of the C6H5 + CH2O Reaction\u201d, Phys. Chem. Chem. Phys., 2, 5566-70 (2000).<br \/>\n348. W. S. Xia and M. C. Lin, \u201cAb Initio MO\/Statistical Theory Prediction of the OH + HONO Reaction Rate: Evidence for the Negative Temperature Dependence\u201d, PhysChemComm (Electronic Journal), 13 (2000).<br \/>\n349. L. V. Moskaleva and M. C. Lin, \u201cThe Spin-Conserved Reaction CH + N2 H + NCN: A Major Pathway to Prompt NO Studied by Quantum\/Statistical Theory Calculations and Kinetic Modeling of Rate Constant\u201d, Proc. Combust. Intst., 28 (Part II), 2393-401 (2000).<br \/>\n350. L. C. Chen, K. H. Chen, J.-J. Wu, D. M. Bhusari and M. C. Lin, \u201cSilicon Carbon Nitride: A New Wideband Gap Material\u201d, in Silicon Based Materials and Devices, H. S. Nalwa, ed., Chap. 2, Vol. 1, pp. 73-125, Academic Press, N. Y., 2001.<br \/>\n351. J. Park, S. Gheyas and M. C. Lin, \u201cKinetics of Phenyl Radical Reactions with Ethane and Neopentane: Reactivity of C6H5 Toward the Primary C-H Bond of Alkanes\u201d, Int. J. Chem. Kinet., 33, 64-69 (2001).<br \/>\n352. W. S. Xia and M. C. Lin, \u201cA Multifacet Mechanism for the OH + HNO3 Reaction: An Ab Initio MO\/Statistical Theory Study\u201d, J. Chem. Phys., 114, 4522-32 (2001).<br \/>\n353. L. V. Moskaleva and M. C. Lin, \u201cComputational Study on the Energetics of NCN Isomers and the Kinetics of the C + N2 N + CN Reaction\u201d, J. Phys. Chem. A. 105, 4156-63 (2001).<br \/>\n354. A. M. Mebel, M. C. Lin, D. Charkraborty, J. Park, S. H. Lin and Y. T. Lee, \u201cAb Initio MO\/RRKM Study of Multichannel Rate Constants for the H + C6H5 Reaction and the Unimolecular Decomposition of Benzene\u201d, J. Chem. Phys., 114, 8421-35 (2001).<br \/>\n355. R. S. Zhu, C.-C. Hsu and M. C. Lin, \u201cAb Initio Study of the CH3 + O2 Reaction: Kinetics, Mechanism and Product Branching Probabilities\u201d, J. Chem. Phys. 115, 195-203 (2001).<br \/>\n356. R. S. Zhu and M. C. Lin, \u201cThe CH3 + HO2 Reaction: First Principles Prediction of its Rate Constants and Product Branching Probailities\u201d, J. Phys. Chem. A, 105, 243-48 (2001).<br \/>\n357. F. Bacalzo-Gladden, X. Lu and M. C. Lin, \u201cAdsorption, Isomerzation, and Decomposition of HCN on Si (100)-2&#215;1: A Computational Study with a Double-Dimer Cluster Model\u201d, J. Phys. Chem. A. 105, 4368-73 (2001).<br \/>\n358. X. Lu, G. Fu, N. Wang, Q. Zhang and M. C. Lin, \u201cA Theoretical Study of HN3 Reaction with the C(100)-2\u00d71 Surface\u201d, Chem. Phys. Lett., 343, 212-18 (2001).<br \/>\n359. Hongbo Luo and M. C. Lin, \u201cA Computational Study of the Mechanism for Self-Assembly of N-Pyrrolyl Radicals on Si(100)-2&#215;1\u201d, Chem. Phys. Lett., 343, 219-24 (2001).<br \/>\n360. I. V. Tokmakov and M. C. Lin, \u201cKinetics and Mechanism for the H-for-X Exchange Process in the H + C6H5X (X = D, CH3) Reactions: A Computational Study\u201d, Int. J. Chem. Kinet., 33, 633-53 (2001).<br \/>\n361. W. S. Xia, R. S. Zhu, M. C. Lin and A. M. Mebel, \u201cLow-Energy Paths for the Unimolecular Decomposition of CH3OH: A G2M\/Statistical Theory Study\u201d, Faraday Discuss, 119, 191-205 (2001).<br \/>\n362. L. V. Moskaleva and M. C. Lin, \u201cThe CH + N2 Association Reaction at Low Temperatures: Ab Initio MO\/VRRKM- Theory Analysis of Temperature and Pressure Effects\u201d, Z. Phys. Chem., 215, 1043-54 (2001).<br \/>\n363. X. Lu, Q. Zhang and M. C. Lin, \u201cAdsorption of Methanol, Formaldehyde and Formic Acid on the Si(100)-2&#215;1 Surface: A Computational Study\u201d, Phys. Chem. Chem. Phys., 3, 2156-61 (2001).<br \/>\n364. X. Lu, M. C. Lin, X. Xu, N. Wang and Q. Zhang, \u201cTheoretical study of [4 + 2] cycloadditions of some 6- and 5-member ring aromatic compounds on the Si(001)-2 x 1 surface: correlation between binding energy and resonance energy\u201d, PhysChemComm, 13, 1-3 (2001).<br \/>\n365. X. Lu, X. Xu, N. Wang, Q. Zhang and M. C. Lin, \u201cChemisorption and Decomposition of Thiophene and Furan on the Si(100)-2 e 1 Surface: A Quantum Chemical Study\u201d, J. Phys. Chem. B. 105, 10069-75 (2001).<br \/>\n366. J. Park and M. C. Lin, \u201cDoes CH3 Addition to C6H6 Occur as Reported\u201d, Int. J. Chem. Kinet., 33, 803-07 (2001).<br \/>\n367. R. S. Zhu and M. C. Lin, \u201cThe Self-Reaction of Hydroperoxy Radicals: Ab initio Characterization of Dimer Structures and Reaction Mechanisms\u201d, PhysChemComm, 23, 1-6 (2001).<br \/>\n368. R. S. Zhu and M. C. Lin, \u201cAb Initio Study of Ammonium Perchlorate Combustion Initiation Processes: Unimolecular Decomposition of Perchloric Acid and the Related OH + ClO3 Reaction\u201d, PhysChemComm, 25, 1-5 (2001).<br \/>\n369. R. S. Zhu, E. G. W. Diau, M. C. Lin and A. M. Mebel, \u201cA Computational Study of the OH(OD) + CO Reactions: Effects of Pressure, Temperature, and Quantum-Mechanical Tunneling on Product Formation\u201d, J. Phys. Chem. A, 105, 11249-59 (2001).<br \/>\n370. J. Park, D. Chakraborty, S. Jamindar, W. S. Xia, M. C. Lin and C. Bedford, \u201cThermal Decomposition of 2,2-bis(Difluoroamino) Propane Studied by FTIR Spectrometry and Quantum Chemical Calculations: The Primary Decomposition Kinetics and the Mechanism for the Decomposition of the (CH3)2CNF2 Radical\u201d, Thermochimica Acta, 384, 101-11 (2002).<br \/>\n371. D. Chakraborty and M. C. Lin, \u201cFormation and Decomposition of CH2N and CH2NO in the Combustion of RDX and HMX Studied by Quantum Chemical and Statistical Theory Calculations\u201d, Proc. 5th Intern. Symp. on Special Topics in Chemical Propulsion and Combustion of Energetic Materials, eds. K. K. Kuo and L. T. DeLuca, pp. 31-39, Begell House, London, 2002.<br \/>\n372. Xin Lu and M. C. Lin, \u201cReactions of Some [C, N, O]-Containing Molecules with Silicon Surfaces: Experimental and Theoretical Studies\u201d, Int. Rev. Phys. Chem., 21, 137-84 (2002).<br \/>\n373. R. S. Zhu and M. C. Lin, \u201cAb Initio Study of the Catalytic Effect of H2O on the Self- Reaction of HO2\u201d, Chem. Phys. Lett., 354, 217 (2002).<br \/>\n374. T. B. Brill, M. C. Beckstead, J. E. Flanagan, M. C. Lin, T. A. Litzinger, R. H. Woodward Waesche and Charles A. Wight, \u201cChemical Speciation and Dynamics in the Surface Combustion Zone of Energetic Materials\u201d, J. Propul. Power, 18, 824-34 (2002).<br \/>\n375. J. Park, Y. M. Choi, I. V. Dyakov and M. C. Lin, \u201cAn Experimental and Computational Study of the Thermal Oxidation of C6H5NO by NO2\u201d, J. Phys. Chem. A., 106, 2903-08 (2002)<br \/>\n376. X. Lu, X. Xu, N. Wang, Q. Zhang and M. C. Lin, \u201cHigh Charge Flexibility of the Surface Dangling Bonds on the Si(111)-7&#215;7 Surface and the NH3 Chemisorption: A DFT Study\u201d, Chem. Phys. Lett., 355, 365-71 (2002).<br \/>\n377. R. S. Zhu, Z. F. Xu and M. C. Lin, \u201cAb Initio Studies of ClOx Reactions: I. Kinetics and Mechanism for the OH + ClO Reaction\u201d, J. Chem. Phys., 116, 7452-60 (2002).<br \/>\n378. R. S. Zhu and M. C. Lin, \u201cAb Initio Studies of ClOx Reactions: II. Unimolecular Decomposition of s-ClO3 and the Bimolecular O + OClO Reaction\u201d, J. Phys. Chem. A, 106, 8386-90 (2002).<br \/>\n379. J. Park, R. S. Zhu and M. C. Lin, \u201cThermal Decomposition of Ethanol. 1. Ab Initio MO\/RRKM Prediction of Rate Constant and Product Branching Ratios\u201d, J. Chem. Phys., 117, 3224-31 (2002).<br \/>\n380. C.-C. Hsiao, Y.-P. Lee, N. S. Wang, J. H. Wang and M. C. Lin, \u201cExperimental and Theoretical Studies of Rate Coefficients of the Reaction O (3P) + HCl at High Temperatures\u201d, J. Phys. Chem. A, 106, 10231-237 (2002).<br \/>\n381. I. V. Tokmakov and M. C. Lin, \u201cKinetics and Mechanism for the OH + C6H6 Reaction: A Detailed Analysis with First Principles Calculations\u201d, J. Phys. Chem. A, 106, 11309-326 (2002).<br \/>\n382. B. H. Bui, R. S. Zhu and M. C. Lin, \u201cThermal Decomposition of iso-Propanol: First-Principles Prediction of Total and Product-Branching Rate Constants\u201d, J. Chem. Phys., 117, 11188-95 (2002).<br \/>\n383. L. V. Moskaleva and M. C. Lin, \u201cComputational Study of the Kinetics and Mechanisms for the Reaction of H atoms with c-C5H6\u201d, Proc. Combust. Inst., 29, 1319-27 (2002).<br \/>\n384. Z. F. Xu, R. S. Zhu and M. C. Lin, \u201cAb Initio Studies of ClOx Reactions: III. Kinetics and Mechanism for the OH + OClO Reaction\u201d, J. Phys. Chem. A, 107, 1040-49 (2003).<br \/>\n385. I. V. Tokmakov, L. V. Moskaleva, D. V. Paschenko and M. C. Lin, \u201cComputational Study of the HCCO + NO Reaction: Ab Initio MO\/vRRKM Calulcations of the Total Rate Constants and Product Branching Ratios\u201d, J. Phys. Chem. A, 107, 1066-76 (2003).<br \/>\n386. R. S. Zhu and M. C. Lin, \u201cAb Initio Studies of ClOx Reactions: IV. Kinetics and Mechanism for the Self-Reaction of ClO Radicals\u201d, J. Chem. Phys., 118, 4094-4106 (2003).<br \/>\n387. R. S. Zhu and M. C. Lin, \u201cAb Initio Studies of ClOx Reactions: V. Evidence of a New Path in the Cl + ClOOCl Reaction\u201d, J. Phys. Chem. A, 107, 3836-40 (2003).<br \/>\n388. Z. F. Xu, R. S. Zhu and M. C. Lin, \u201cAb Initio Sudies of ClOx Reactions: VI. Prediction of Total Rate Constant and Product Branching Probabilities for the HO2 + ClO Reaction\u201d, J. Phys. Chem. A, 107, 3841-50 (2003).<br \/>\n389. Z. F. Xu and M. C. Lin, \u201cKinetics and Mechanism for the CH2O + NO2 Reaction: A Computational Study\u201d, Int. J. Chem. Kinet., 35, 184-90 (2003).<br \/>\n390. R. S. Zhu and M. C. Lin, \u201cAb Initio Sudies of ClOx Reactions: VII. Isomers of Cl2O3 and Their Roles in the ClO + OClO Reaction\u201d, J. Chem. Phys., 118, 8645-55 (2003).<br \/>\n391. M. T. Nguyen, H. T. Le, B. Hajgato, T. Veszpremi and M. C. Lin, \u201cNitromethane-Methyl Nitrite Rearrangement: A Persistent Discrepancy Between Theory and Experiment\u201d, J. Phys. Chem. A, 107, 4286-91 (2003).<br \/>\n392. J. Park, Z. F. Xu and M. C. Lin, \u201cThermal Decomposition of Ethanol. II. Kinetics and Mechanism for the H + C2H5OH Reaction\u201d, J. Chem. Phys., 118, 9990-96 (2003).<br \/>\n393. R. S. Zhu and M. C. Lin, \u201cAb Initio Studies of ClOx Reactions. VIII. Isomerization and Decomposition of ClOO and Related Bimolecular Processes\u201d, J. Chem. Phys., 119, 2075-82 (2003).<br \/>\n394. R. S. Zhu and M. C. Lin, \u201cH2O-Catalyzed Formation of O3 in the Self-Reaction of HO2: A Computational Study on the Effect of n-H2O (n = 1-3)\u201d, PhysChemComm, 6(13), 51-54 (2003).<br \/>\n395. Y. M. Choi and M. C. Lin, \u201cExperimental and Computational Studies of the Kinetics and Mechanisms for C6H5 Reactions with Acetone-h6 and d6\u201d, J. Phys. Chem. A., 107(39), 7755-61 (2003).<br \/>\n396. R. S. Zhu and M. C. Lin, \u201cTowards Reliable Prediction of Kinetics and Mechanisms for Elementary Reactions: Key Combustion Initiation Processes of Ammonium Perchlorate\u201d, a chapter of book on Energetic Materials, Part 2, Detonation and Combustion, P. Politzer and J. S. Murray, eds. chp. 11, pp. 373 &#8211; 443, Elsevier Science Pub., 2003.<br \/>\n397. I. V. Tokmakov and M. C. Lin, \u201cReaction of Phenyl Radical with Acetylene: A Quantum Chemical Investigation of the Mechanism and Master Equation Analysis of the Kinetics\u201d, J. Am. Chem. Soc., 125, 11397-408 (2003).<br \/>\n398. Z. F. Xu and M. C. Lin, \u201cAb Initio studies of ClOx reactions. IX. Combination and disproportionation reactions of ClO and s-ClO3 radicals\u201d, J. Chem. Phys., 119, 8897-8904 (2003).<br \/>\n399. R. S. Zhu and M. C. Lin, \u201cAb initio Study of the HO2 + NO Reaction: Prediction of the Total Rate Constant and Product Branching Ratios for the Forward and Reverse Processes\u201d, J. Chem. Phys., 119, 10667-10677 (2003).<br \/>\n400. C.-W. Lu, Y.-J. Wu, Y.-P. Lee, R. S. Zhu and M. C. Lin, \u201cExperiments and Calculations on Rate Coefficients for Pyrolysis of SO2 and the Reaction O + SO at High Temperatures\u201d, J. Phys. Chem. A, 107, 11020-11029 (2003).<br \/>\n401. J. Park, Liming Wang and M. C. Lin, \u201cKinetics of Phenyl Radical Reactions with Propane, n-Butane, n-Hexane and n-Octane: Reactivity of C6H5 toward the Secondary C-H Bond of Alkanes\u201d, Int. J. Chem. Kinet., 36, 49-56 (2004).<br \/>\n402. I. V. Tokmakov, L. V. Moskaleva and M. C. Lin, \u201cQuantum Chemical\/vRRKM Study on the Thermal Decomposition of Cyclopentadiene\u201d, Int. J. Chem. Kinet., 36, 139-51 (2004).<br \/>\n403. Y. M. Choi and M. C. Lin, \u201cKinetics and Mechansism for the Reactions of Phenyl Radicals with Ketene and its Isotopomer: An Experimental and Computational Study\u201d, ChemPhysChem., 5, 225-32 (2004).<br \/>\n404. Z. F. Xu and M. C. Lin, \u201cComputational Study on the Kinetics and Mechanisms for the Reactions of HCO with HONO and HNOH\u201d, Int. J. Chem. Kinet., 36, 178-87 (2004)<br \/>\n405. Z. F. Xu and M. C. Lin, \u201cA Computational Study of the Kinetics and Mechanism for the Reaction of HCO with HNO\u201d, Int. J. Chem. Kinet., 36, 205-15 (2004).<br \/>\n406. Y. M. Choi, J. Park and M. C. Lin, \u201cKinetics and Mechanism for the C6H5 + CH3CHO Reaction: A Computational and Experimental Study\u201d, ChemPhysChem., 5, 661-68 (2004).<br \/>\n407. Z. F. Xu, J. Park and M. C. Lin, \u201cThermal Decomposition of Ethanol. III. Kinetics and Mechanism for the CH3 + C2H5OH Reaction\u201d, J. Chem. Phys., 120, 6593 \u2013 99 (2004).<br \/>\n408. R. S. Zhu, Z. F. Xu and M. C. Lin, \u201cAb Initio Study of Alkyl Radical Reactions: Combination and Disproportionation Reactions of CH3 with C2H5 and the Decomposition of Chemically Activated C3H8\u201d, J. Chem. Phys., 120, 6566 \u2013 73 (2004).<br \/>\n409. I. V. Tokmakov and M. C. Lin, \u201cA Combined Quantum Chemical\/RRKM-ME Computational Study of the Phenyl + Ethylene, Vinyl + Benzene and H + Styrene Reactions\u201d, J. Phys. Chem. A, 108, 9697-714 (2004).<br \/>\n410. J. H. Wang and M. C. Lin, \u201cAdsorption and Reaction of C2N2 on Si(100)-2&#215;1: A Computational Study with Single- and Double-Dimer Cluster Models\u201d, J. Phys. Chem. B, 108, 9189 &#8211; 97 (2004).<br \/>\n411. Y. M. Choi, J. Park, Liming Wang, and M. C. Lin, \u201cFormation and decomposition of peroxyphenylvinyl radicals in the C6H5C2H2 + O2 reaction\u201d, ChemPhysChem, 5, 1231-34 (2004).<br \/>\n412. J. H. Wang and M. C. Lin, \u201cLow-Pressure Organometallic Chemical Vapor Deposition of Indium Nitride on Titanium Oxide Nanoparticles\u201d, ChemPhysChem, 5, 1615-18 (2004).<br \/>\n413. C.-M. Tzeng, Y. M. Choi, C.-L. Huang, C.-K. Ni, Yuan T. Lee, and M. C. Lin, \u201cPhotodissociation of nitrosobenzene and decomposition of phenyl radical\u201d, J. Phys. Chem. A, 108, 7928-35 (2004).<br \/>\n414. C.-W. Lu, Y.-J.Wu, Y.-P. Lee, R. S. Zhu and M. C. Lin, \u201cExperimental and Theoretical Investigations of Rate Coefficients of the Reaction S(3P) + O2 in the Temperature range 298\uf02d878 K\u201d, J. Chem. Phys., 121, 8271-78 (2004).<br \/>\n415. R. S. Zhu and M. C. Lin, \u201cAb initio Studies of ClOx Reactions: Prediction of the Rate Constants of ClO + NO for the Forward and Reverse Processes\u201d, ChemPhysChem, 5, 1864-70 (2004).<br \/>\n416. H. Ismail, J. Park, B. M. Wong, W. H. Green, Jr. and M. C. Lin, \u201cA Theoretical and Experimental Kinetic Study of Phenyl Radical Addition to Butadiene\u201d, Proc. Combust. Inst., 30, 1049 &#8211; 56 (2005).<br \/>\n417. Y. M. Choi and M. C. Lin, \u201cKinetics and Mechanisms for Reactions of HNO with CH3 and C6H5 Studied by Quantum-chemical and Statistical-theory Calculations\u201d, Int. J. Chem. Kinet., 37, 261-74 (2005).<br \/>\n418. J. H. Wang and M. C. Lin, \u201cAdsorption and Reaction of N2H4 on Si(100)-2 \u00d7 1: A Computational Study with Single- and Double-Dimer Cluster Models\u201d, Surf. Sci., 579, 197-214 (2005).<br \/>\n419. C.-L. Huang, S. Y. Tseng, T. Y. Wang, N. S. Wang, Z. F. Xu and M. C. Lin, \u201cReaction Mechanism and Kinetics of the NCN + NO Reaction: Comparison of Theory and Experiment\u201d, J. Chem. Phys., 122, 184321\/1-184321\/9 (2005).<br \/>\n420. Shucheng Xu and M. C. Lin, \u201cA Computational Study on the Kinetics and Mechanism for the Unimolecular Decomposition of C6H5NO2 and the Related C6H5 + NO2 and C6H5O + NO Reactions\u201d, J. Phys. Chem. B, 109, 8367-8373 (2005).<br \/>\n421. R. S. Zhu and M. C. Lin, \u201cAb initio Studies of ClOx Reactions: Prediction of the Rate Constants of ClO + NO2 for the Forward and Reverse Processes\u201d, ChemPhysChem, 6, 1514-1521 (2005).<br \/>\n422. J. H. Wang, M. C. Lin and Y.-C. Sun, \u201cReactions of Hydrazoic Acid on TiO2 Nanoparticles: An Experimental and Computational Study\u201d, J. Phys. Chem. B, 109, 5133\u201342 (2005).<br \/>\n423. R. S. Zhu and M. C. Lin, \u201cAb Initio Study of the Oxidation of NCN by O2\u201d, Int. J. Chem. Kinet., 37, 593-98 (2005).<br \/>\n424. J. Park, I. V. Tokmakov and M. C. Lin, \u201cExperimental and Computational Studies of the Phenyl Radical Reaction with Propyne\u201d, ChemPhysChem, 6, 2075-85 (2005).<br \/>\n425. C.-W. Lu, S.-L. Chou, Y.-P. Lee, Shucheng Xu, Z. F. Xu and M. C. Lin, \u201cExperimental and Theoretical Studies of Rate Coefficients for the Reaction O (3P) + CH3OH at High Temperatures\u201d, J. Chem. Phys., 122, 244314\/1-244314\/11 (2005).<br \/>\n426. J. H. Wang and M. C. Lin, \u201cReactions of Trimethyl Indium on TiO2 Nanoparticles: An Experimental and Computational Study\u201d, J. Phys. Chem. B, 109, 20858-67 (2005).<br \/>\n427. R. S. Zhu, J. Park and M. C. Lin, \u201cAb initio Kinetic Study of the Low Energy Paths of the HO + C2H4 Reaction\u201d, Chem. Phys. Lett., 408, 25-30 (2005).<br \/>\n428. Z. F. Xu, H.-C. Hsu and M. C. Lin, \u201cAb Initio Kinetics of the HCO Reaction with NO: Abstraction vs. Association\/Elimination Mechanism\u201d, J. Chem. Phys., 122, 234308\/1-234308\/11 (2005).<br \/>\n429. I.V. Tokmakov, G.-S. Kim, V. V. Kislov, A. M. Mebel and M. C. Lin, \u201cThe Reaction of Phenyl Radical with Molecular Oxygen: A G2M Study of the Potential Energy Surface\u201d, J. Phys. Chem. A, 109, 6114-27 (2005).<br \/>\n430. Z. F. Xu and M. C. Lin, \u201cA DFT Computational Study of the C6H5 + C6H5NO Kinetics and Mechanism\u201d, J. Phys. Chem. A, 109, 9054-60 (2005).<br \/>\n431. S. Xu, S. Irle, D. G. Musaev and M. C. Lin, \u201cWater Clusters on Graphite: Methodology for Quantum Chemical A Priori Prediction of Reaction Rate Constants\u201d, J. Phys. Chem. A, 109, 9563-72 (2005).<br \/>\n432. Z. F. Xu and M. C. Lin, \u201cAb Initio Kinetics for the Unimolecular Reaction C6H5OH \uf0ae CO + C5H6\u201d, J. Phys. Chem. A, 110, 1672-77 (2006).<br \/>\n433. Shucheng Xu, R. S. Zhu and M. C. Lin, \u201cAb Initio Study of the OH + CH2O Reaction: The Effect of the OH\u2219\u2219OCH2 Complex on the H-Abstraction Kinetics\u201d, Int. J. Chem. Kinet, 38, 322-6 (2006).<br \/>\n434. J. H. Wang, Fe Bacalzo-Gladden and M. C. Lin, \u201cA Computational Study of the Adsorption and Reactions of HN3 on Si(100)-2&#215;1\u201d, Surf. Sci., 600, 1113-24 (2006).<br \/>\n435. S. C. Xu, G. D. Musaev, S. Irle amd M. C. Lin, \u201cComputational Studies of the Mechanisms for the W and W+ + H2O Reactions\u201d, J. Phys. Chem. A, 110, 4495-01 (2006) .<br \/>\n436. Y. M. Choi, Charles Compson, M. C. Lin and Meilin Liu, \u201cA mechanistic study for H2S decomposition on Ni- and Cu-based Anode Surfaces in Solid Oxide Fuel Cells\u201d, Chem. Phys. Lett., 421, 179-83 (2006).<br \/>\n437. J. H. Wang, Meilin Liu and M. C. Lin, \u201cOygen Reduction in the SOFC Cathode of Ag\/CeO2\u201d, Solid Stae Ionics, 177, 939-47 (2006).<br \/>\n438. K. Xu, Z. F. Xu and M. C. Lin, \u201cAb Initio Kinetics of the FCO Reaction with NO\u201d, J. Phys. Chem. A, 110, 6718-23 (2006).<br \/>\n439. J. H. Wang and M. C. Lin, \u201cReactions of HN3 and Trimethyl Indium on Rutile TiO2 (11O): A Computational Study on the Formation of the First Monolayer InN\u201d, J. Phys. Chem. B, 110, 2263-70 (2006).<br \/>\n440. Y. M. Choi, Harry Abernathy, Hsin-Tsung Chen, M. C. Lin and Meilin Liu, \u201cCharacterization of O2-CeO2 interactions using in-situ Raman spectroscopy and first-principles calculations\u201d, ChemPhysChem, 7, 1957-63 (2006).<br \/>\n441. C. W. Lu, W. J. Wu, Y.-P. Lee, R. S. Zhu and M. C. Lin, \u201cExperimental and theoretical investigation of rate coefficients of the reaction S (3P) + OCS in the temperature range 298\uf02d985 K\u201d, J. Chem. Phys., 125, 164329\/1-164329\/10 (2006).<br \/>\n442. G. J. Nam, J. Park, I. V. Tokmakov and M. C. Lin, \u201cExperimental and Theoretical Studies of the Phenyl Radical Reaction with Propene\u201d, J. Phys. Chem. A, 110, 8729-35 (2006).<br \/>\n443. S. C. Chen, Shucheng Xu, Eric. W. G. Diau and M. C. Lin, \u201cA Computational Study on the Kinetics and Mechanism for the Unimolecular Decomposition of o-Nitrotoluene\u201d, J. Phys. Chem. A, 110, 10130-34 (2006).<br \/>\n444. R. S. Zhu and M. C. Lin, \u201cA Computational Study on the Decomposition of NH4ClO4: Comparison of the Gas-Phase and Condensed-Phase Results\u201d, Chem. Phys. Lett., 431, 272-77 (2006).<br \/>\n445. S. C. Xu, S. Irle, D. G. Musaev and M. C. Lin, \u201cQuantum Chemical Prediction of Reaction Pathways and Rate Constants for Dissociative Adsorption of COx and NOx on the Graphite (0001) Surface\u201d, J. Phys. Chem. B, 110, 21135-44 (2006).<br \/>\n446. Y. M. Choi, Charles Compson, M. C. Lin and Meilin Liu, \u201cAb initio Analysis of Sulfur Tolerance of Ni, Cu, Ni-Cu Alloys for Solid Oxide Fuel Cells\u201d, J. Alloys and Compounds, 427, 25-9 (2007).<br \/>\n447. S. C. Xu, S. Irle, D. G. Musaev and M. C. Lin, \u201cQuantum Chemical Study of the Dissociative Adsorption of OH and H2O on Pristine and Defective Graphite (0001) Surfaces: Reaction Mechanisms and Kinetics\u201d, J. Phys. Chem. C, 111, 1355-65 (2007).<br \/>\n448. Z. F. Xu and M. C. Lin, \u201cComputational Studies on the Kinetics and Mechanisms for NH3 Reactions with ClOx (x = 0 &#8211; 4) Radicals\u201d, J. Phys. Chem. A, 111, 584-90 (2007).<br \/>\n449. H.-T. Chen, D. G. Musaev, S. Irle and M. C. Lin, \u201cThe Mechanisms of the Reactions of W and W+ with NOx (x = 1,2): A Computational Study\u201d, J. Phys. Chem. A., 111, 982-91 (2007).<br \/>\n450. S. C. Xu and M. C. Lin, \u201cTheoretical Study on the Kinetics for OH Reactions with CH3OH and C2H5OH\u201d, Proc. Combust. Inst., 31, 159-66 (2007).<br \/>\n451. G. Nam, I. V. Tokmakov, J. Park and M. C. Lin, \u201cKinetics for the Reaction of Phenyl Radical with Phenylethyne and Phenylethene\u201d, Proc. Combust. Inst., 31, 249-56 (2007).<br \/>\n452. M.-F. Lin, Y. T. Lee, C.-K. Ni, Shucheng Xu and M. C. Lin, \u201cPhotodissociation Dynamics of Nitrobenzene and o-Nitrotoluene\u201d, J. Chem. Phys., 126, 064310 (2007).<br \/>\n453. Y. M. Choi, D. S. Mebane, M. C. Lin and Meilin Liu, \u201cOxygen Reduction on LaMnO3-based Cathode Materials in Solid Oxide Fuel Cells\u201d, Chem. Mat., 19, 1690-99 (2007).<br \/>\n454. H. T. Chen, Y. M. Choi, Meilin Liu and M. C. Lin, \u201cA Theoretical Study of Surface Reduction Mechanisms of CeO2 (111) and (110) by H2\u201d, ChemPhysChem, 8, 849-55 (2007).<br \/>\n455. B. Bui, T. J. Tsay, M. C. Lin and C. F. Melius, \u201cTheoretical and Experimental Studies of the Diketene System: Product Branching Decomposition Rate Constants and Energetics of Isomers\u201d, Int. J. Chem. Kinet., 39, 580-90 (2007).<br \/>\n456. J. G. Chang, J. H. Wang and M. C. Lin, \u201cA Computational Study on the Adsorption of BClx (x = 1\u20133) on TiO2 Anatase (101) and Rutile (110) Surfaces\u201d, J. Phys. Chem. A, 111, 6746-54 (2007).<br \/>\n457. J. G. Chang, H.-T. Chen, Shucheng Xu and M. C. Lin, \u201cA Computational Study on the Kinetics and Mechanisms for the Unimolecular Decomposition of Formic Acid and Oxalic Acid\u201d, J. Phys. Chem. A, 111, 6789-97 (2007).<br \/>\n458. Y.-R. Tzeng, P. Raghunath, S.-C. Chen and M. C. Lin, \u201cA Computational Study of Reaction Pathways for the Formation of Indium Nitride from Trimethylindium with HN3: Comparison of the Reaction with NH3 and that on TiO2 Rutile (110) Surface\u201d, J. Phys. Chem. A, 111, 6781-88 (2007).<br \/>\n459. R. S. Zhu and M. C. Lin, \u201cAb Initio Study of the ClO + NH2 Reaction: Prediction of the Total Rate Constant and Product Branching Ratios\u201d, J. Phys. Chem. A, 111. 3977-83 (2007).<br \/>\n460. D. G. Musaev, Stephan Irle, and M. C. Lin, \u201cThe Mechanisms of the Reactions of W and W+ with COx (x = 1, 2): A Computational Study\u201d, J. Phys. Chem. A, 111, 6665-73 (2007).<br \/>\n461. J. Park, I. V. Tokmakov and M. C. Lin, \u201cExperimental and Computational Studies of the Phenyl Radical Reaction with Allene\u201d, J. Phys. Chem. A, 111, 6881-89 (2007).<br \/>\n462. Y. M. Choi, M. C. Lin and Meilin Liu, \u201cComputational Study of Catalytic Mechanism toward Oxygen Reduction on La0.5Sr0.5MnO3 in Solid Oxide Fuel Cells\u201d, Angew. Chem., I.E., 46, 7214-19 (2007).<br \/>\n463. P. Raghunath and M. C. Lin, \u201cComputational Study on the Mechanisms and Energetics of Trimethylindium Reactions with H2O and H2S\u201d, J. Phys. Chem. A, 111, 6481-88 (2007).<br \/>\n464. R. S. Zhu and M. C. Lin, \u201cAb initio Study on the Oxidation of NCN by O (3P): Prediction of the Total Rate Constant and Product Branching Ratios\u201d, J. Phys. Chem. A, 111, 6766-71 (2007).<br \/>\n465. C.-W. Wu, Y.-P. Lee, Shucheng Xu and M. C. Lin, \u201cExperimental and Theoretical Studies of Rate Coefficients for the Reaction O(3P) + C2H5OH at High Temperatures\u201d, J. Phys. Chem. A, 111, 6693-6703 (2007).<br \/>\n466. Z. F. Xu and M. C. Lin, \u201cAb initio Study on the Kinetics and Mechanisms for O3 Reactions with HO2 and HNO\u201d, Chem. Phys. Lett., 440, 12-18 (2007).<br \/>\n467. H.-T. Chen, YongMan Choi, Meilin Liu, and M. C. Lin, \u201cA First-principles Analysis for Sulfur Tolerance of CeO2 in Solid Oxide Fuel Cells\u201d, J. Phys. Chem. C, 111, 11117-11122 (2007).<br \/>\n468. S. C. Xu and M. C. Lin, \u201cAb initio Chemical Kinetics for the OH + HNCN Reaction\u201d, J. Phys. Chem. A, 111, 6730-40 (2007).<br \/>\n469. C.-M. Tseng, Y. T. Lee, M.-F. Lin, C.-K. Ni, S.-Y. Liu, Y.-P. Lee, Z. F. Xu and M. C. Lin, \u201cPhotodissociation Dynamics of Phenol\u201d, J. Phys. Chem. A, 111, 9463-70 (2007).<br \/>\n470. R. S. Zhu, J. H. Wang and M. C. Lin, \u201cSublimation of Ammonium Salts: A Novel Mechanism Revealed by a First-Principles Study of the NH4Cl System\u201d, J. Phys. Chem. C, 111, 13831-38 (2007).<br \/>\n471. K. Xu, Z. F. Xu and M. C. Lin, \u201cAb initio Kinetic Prediction of Branching Rate Constants for Reactions of H Atoms with CH3O and CH2OH\u201d, Molecular Physics, 105, 2763-76 (2007).<br \/>\n472. H.-T. Chen, D. G. Musaev and M. C. Lin, \u201cAdsorption and Dissociation of H2O on a W(111) surface : A Computational Study\u201d, J. Phys. Chem. C, 111, 17333-339 (2007)<br \/>\n473. H.-T. Chen, D. G. Musaev and M. C. Lin, \u201cAdsorption and Dissociation of COx (x=1, 2) on W (111) surface : A Computational Study\u201d, J. Phys. Chem. C, 112, 3341-48 (2008)<br \/>\n474. T. M. Paronyan, A. M. Kechiantz and M. C. Lin, \u201cHighly Active Nanocrystalline TiO2 Photoelectrodes\u201d, Nanotechnology, 19, 115201 (2008)<br \/>\n475. P. Raghunath and M. C. Lin, \u201cAdsorption Configurations and Reactions of Boric Acid on a TiO2 Anatase (101) Surface\u201d, J. Phys. Chem. C, 112, 8276-87 (2008).<br \/>\n476. H.-L. Chen, S.-P. Ju, H.-T. Chen, D. G. Musaev and M. C. Lin, \u201cAdsorption and Dissociation of the HCl and Cl2 Molecules on W(111) Surface : A Computational Study\u201d, J. Phys. Chem. C, 112(32), 12342-12348 (2008).<br \/>\n477. H.-T. Chen, J.-G. Chang, D. G. Musaev and M. C. Lin, \u201cA Computational Study on Kinetics and Mechanisms of Unimolecular Decomposition of Succinic Acid and Its Anhydride\u201d, J. Phys. Chem. A, 112, 6621-29 (2008).<br \/>\n478. R. S. Zhu and M. C. Lin, \u201cThe Mechanism and Kinetics for Ammonium Perchlorate Sublimation: A First-Principles Study\u201d, J. Phys. Chem. C, 112(37), 14481-85 (2008).<br \/>\n479. H.-F. Chen, J. M. Lin, Y.-P. Lee, J. F. Ogilvie, Z. F. Xu and M. C. Lin, \u201cReaction Dynamics of O (1D) + C6H6 and C6D6\u201d, J. Chem. Phys., 129, 174303 (2008).<br \/>\n480. T.-J. Yang, N. S. Wang, L. C. Lee, Z. F. Xu and M. C. Lin, \u201cKinetics and Mechanism of the NCN + NO2 Reaction Studied by Experiment and Theory\u201d, J. Phys. Chem. A, 112(41), 10185-10192 (2008).<br \/>\n481. T. M. Paronyan, A. M. Kechiantz, and M. C. Lin, \u201cHighly Efficient Dye-sensitized Solar Cells Based on the Discharged TiO2 Nanoparticles\u201d, Armenian Journal of Physics, 1, 151-154 (2008)<br \/>\n482. J. Park and M. C. Lin, \u201cTemperature and Pressure Effects on Formation and Decomposition of Phenylvinylperoxy Radicals in the C6H5C2H2 + O2 Reaction\u201d, Proceedings of the Combustion Institute, 32, 305-310 (2009).<br \/>\n483. Shucheng Xu and M. C. Lin, \u201cAb initio Chemical Kinetics for the Reactions of HNCN with O(3P) and O2\u201d, Proceedings of the Combustion Institute, 32, 99-106 (2009).<br \/>\n484. R. S. Zhu, Hue M.T. Nguyen and M. C. Lin, \u201cAb Initio Study on the Oxidation of NCN by OH: Prediction of the Total Rate Constant and Individual Rate Constants\u201d, J. Phys, Chem. A, 113, 298-304 (2009).<br \/>\n485. P. Raghunath and M. C. Lin, \u201cAdsorption Configurations and Decomposition Pathways of Boric Acid on TiO2 Rutile (110) Surface: A Computational Study\u201d, J. Phys. Chem. C, 113, 3751-3762 (2009).<br \/>\n486. S.-Y. Chen, M.-C. Wu, C.-S. Lee and M. C. Lin, \u201cSynthesis of In(OH)3 and In2O3 nanomaterials incorporating Au\u201d, J. Mater. Sci., 44, 794-98 (2009)<br \/>\n487. H.-T. Chen, H.-L. Chen, S.-P. Ju, D. G. Musaev and M. C. Lin, \u201cDensity-Functional Studies of the Adsorption and Dissociation of NOx (x=1, 2) molecules on W(111) Surface\u201d, J. Phys. Chem. C, 113, 5300-07 (2009).<br \/>\n488. C. Y. Chang, H.-T. Chen and M. C. Lin, \u201cAdsorption Configurations and Reactions of Nitric Acid on TiO2 Rutile (110) and Anatase (101) surfaces\u201d, J. Phys. Chem. C, 113, 6140-49 (2009).<br \/>\n489. Y.-C. Chen, K.-B. Chen, W.-T. Chen, S.-F. Weng, C.-S. Lee and M. C. Lin, \u201cDirect Synthesis of Zr-doped Ceria Nanotubes\u201d, J. Phys. Chem. C, 113, 5031-34 (2009).<br \/>\n490. J.-H. Wang, C. S. Lee and M. C. Lin, \u201cMechanism of Ethanol Reforming: Theoretical Foundations\u201d, J. Phys. Chem. C, 113, 6681-88 (2009).<br \/>\n491. P. Raghunath and M. C. Lin, \u201cA Computational Study on the Adsorption Configurations and Reactions of Phosphorous acid on TiO2 Anatase (101) and Rutile (110) Surfaces\u201d, J. Phys. Chem. C, 113, 8394-8406 (2009).<br \/>\n492. Y. M. Choi, M. E. Lynch, M. C. Lin and M. Liu, \u201cPrediction of O2 dissociation kinetics on LaMnO3-based cathode materials for solid oxide fuel cells\u201d, J. Phys. Chem. C, 113, 7290-97 (2009).<br \/>\n493. J. Park, Z. F. Xu and M. C. Lin, \u201cKinetic Study of the C10H7 + O2 Reaction\u201d, J. Phys. Chem. A, 113, 5348-54 (2009).<br \/>\n494. S.-Y. Tzeng, P.-H. Chen, N. S. Wang, L. C. Lee, Z. F. Xu and M. C. Lin, \u201cKinetics and Mechanism of the CN + NCO-&gt;NCN + CO Reaction Studied by Experiment and Theory\u201d, J. Phys. Chem. A, 113, 6314-25 (2009).<br \/>\n495. Z. F. Xu, Kun Xu and M. C. Lin, \u201cAb Initio Kinetics for Decomposition\/Isomerization Reactions of C2H5O1 Radicals\u201d, ChemPhysChem, 10, 972-82 (2009).<br \/>\n496. Shucheng Xu and M. C. Lin, \u201cAb Initio Chemical Kinetics for the NH2 + HNOx Reactions: (I) Kinetics and Mechanism for NH2 + HNO\u201d, Int. J. Chem. Kinet., 41(11), 667-77 (2009).<br \/>\n497. S. C. Xu and M. C. Lin, \u201cAb initio Chemical Kinetics for the NH2 + HNOx Reactions: II. Kinetics and Mechanism for NH2 + HONO\u201d, Int. J. Chem. Kinet., 41(11), 678-88 (2009).<br \/>\n498. Z. F. Xu and M. C. Lin, &#8220;Computational Studies on Metathetical and Redox Processes of HOCl in the Gas Phase: (I) Reactions with H, O, HO and HO2&#8221;, J. Phys. Chem. A, 113, 8811-17 (2009).<br \/>\n499. R. S. Zhu and M. C. Lin, &#8220;CH3NO2 Decomposition\/Isomerization Mechanism and Product Branching Ratios: An Ab Initio Chemical Kinetic Study&#8221;, Chem. Phys. Lett., 478(1-3), 11-16 (2009).<br \/>\n500. S. C. Xu, S. Irle, D. G. Musaev and M. C. Lin, \u201cQuantum Chemical Prediction of Reaction Pathways and Rate Constants for Dissociative Adsorption of CO and CO2 on the Defective Graphite (0001) Surfaces\u201d, J. Phys. Chem. A, 113, 18772-777 (2009).<br \/>\n501. J. Park, Hue M. T. Nguyen, Z. F. Xu, and M. C. Lin, \u201cKinetic study of the 2-naphthyl (C10H7) radical reaction with C2H2\u201d, J. Phys. Chem. A, 113, 12199-206 (2009).<br \/>\n502. H. C. Chiang, N. S. Wang, S. Tsuchiya, H. T. Chen, Y.-P. Lee and M. C. Lin, \u201cReaction Dynamics of O(1D, 3p) + OCS Studied with Time-Resolved FTIR Spectroscopy and Quantum-Chemical Calculation\u201d, J. Phys. Chem. A, 113, 13260-72 (2009).<br \/>\n503. J. Park and M. C. Lin, \u201cThermal Decomposition of Gaseous Ammonium Nitrate at Low Pressure: Kinetic Modeling of Product Formation and Heterogeneous Decomposition of Nitric Acid\u201d, J. Phys. Chem. A, 113, 13556-61 (2009).<br \/>\n504. W. F. Huang, Hsin-Tsung Chen and M. C. Lin, \u201cDensity-Functional Theory Study of the Adsorption and Reaction of H2S on TiO2 Rutile (110) and Anatase (101) Surfaces\u201d, J. Phys. Chem. C, 113(47), 20411-420 (2009).<br \/>\n505. Y. M. Choi, M. C. Lin and Meilin Liu, \u201cRational Design of Novel Cathode Materials in Solid Oxide Fuel Cells using First-Principles Simulations\u201d, J. Power Sources, 195, 1441-45 (2010).<br \/>\n506. Z. F. Xu and M. C. Lin, \u201cComputational Studies on Metathetical and Redox Processes of HOCl in the Gas Phase: (II) Reactions with ClOx (x = 1\u22124)\u201d, Phys. Chem. A, 114(2), 833-838 (2010)<br \/>\n507. S. C. Xu and M. C. Lin, \u201cAb initio Chemical Kinetics for the NH2 + HNOx Reactions: III. Kinetics and Mechanism for NH2 + HONO2\u201d, Int. J. Chem. Kinet., 42(2), 69-78 (2010).<br \/>\n508. R. S. Zhu and M. C. Lin, \u201cAn Ab Initio Chemical Kinetic Study on the Reactions of H, OH and Cl with HOClO3\u201d, Int. J. Chem. Kinet., 42(4), 253-261 (2010).<br \/>\n509. S. Y. Wu, P. Raghunath, J. S. Wu and M.C. Lin, \u201cAb initio Chemical Kinetic Study for Reactions of H Atoms with SiH4 and Si2H6: Comparison of Theory and Experiment\u201d, J. Phys. Chem. A, 114(1), 633-639 (2010).<br \/>\n510. R. S. Zhu, S. C. Xu and M. C. Lin, \u201cAb Initio Chemical Kinetics for the Reactions of N2 with Singlet and Triplet C2O Radicals\u201d, Chemical Physics Letters, 488, 121-125 (2010).<br \/>\n511. D. H. Varma, P. Raghunath and M. C. Lin, \u201cAb Initio Chemical Kinetics for the Reaction of H atom with Si3H8\u201d, J. Phys. Chem. A, 114, 3642-48 (2010).<br \/>\n512. K.-W. Lu, H. Matsui, C.-L. Huang, P. Raghunath, N.-S. Wang and M. C. Lin, A Shock Tube Study on the Thermal Decomposition of CH3OH\u201d, J. Phys. Chem. A, 114, 5493-5502 (2010).<br \/>\n513. Z. F. Xu and M. C. Lin, \u201cComputational Studies on Metathetical and Redox Processes of HOCl in the Gas Phase: (III) Its Self-Reaction and Interactions with HNOx (x = 1-3)\u201d, J. Phys. Chem. A, 114, 5320-26 (2010).<br \/>\n514. J. Park, Sonya Cates and M. C. Lin, \u201cPhotolytically and Thermally Initiated Reactions of NH3 with NOx (x=1,2)\u201d, Combust. Sci. Technol., 182, 365-79 (2010).<br \/>\n515. S. C. Xu and M. C. Lin, \u201cAb Initio Chemical Kinetics for Singlet CH2 Reaction with N2 and the Related Decomposition of Diazomethane\u201d, J. Phys. Chem. A, 114, 5195-5204 (2010).<br \/>\n516. S. C. Xu, S. Irle and M. C. Lin, \u201cQuantum Chemical Prediction of Reaction Pathways and Rate Constants for Reactions of NO and NO2 with Monovacancy Defects on Grapite (0001) Surfaces\u201d, J. Phys. Chem. C, 114, 8375-8382 (2010).<br \/>\n517. W.-T. Chen, K.-B. Chen, M.-F. Wang, S.-F. Weng, C.-S. Lee and M. C. Lin, \u201cEnhanced Catalytic Activity of Ce1-xMxO2 (M = Ti, Zr, and Hf) Solid Solution with Controlled Morphologies\u201d, Chem. Comm., 46, 3286-3288 (2010).<br \/>\n518. Z. F. Xu and M. C. Lin, &#8220;Ab Initio Chemical Kinetic Study on Cl + ClO and Related Reverse Processes&#8221;, J. Phys. Chem. A, 114, 11477-82 (2010).<br \/>\n519. P. Raghunath and M. C. Lin, \u201cAb Initio Chemical Kinetics for SiH3 Reactions with SixH2x+2 (x=1-4)\u201d, J. Phys. Chem. A, 114, 13353\u201313361 (2010).<br \/>\n520. R. S. Zhu and M. C. Lin, \u201cAb Initio Chemical Kinetic Study on the Reactions of ClO with C2H2 and C2H4\u201d, J. Phys. Chem. A, 114(51), 13395-13401 (2010).<br \/>\n521. R. S. Zhu and M. C. Lin, \u201cFirst-Principles Study of Water Effect on the Sublimation of Ammonium Perchlorate\u201d, Int. J. Energ. Mater. Chem. Propul., 9(6), 109 (2010).<br \/>\n522. Z. F. Xu, Kun Xu and M. C. Lin*, \u201cThermal Decomposition of Ethanol. IV. Ab Initio Chemical Kinetics for Reactions of H Atoms with CH3CH2O and CH3CHOH Radicals\u201d, J. Phys. Chem. A, 115(15), 3509-3522 (2011).<br \/>\n523. K. Freel, J. Park, M. C. Lin and M. C. Heaven, \u201cCavity ring-down spectroscopy of the phenyl radical in a pulsed discharge supersonic jet expansion\u201d, Chem. Phys. Lett., 507(4-6), 216-220 (2011).<br \/>\n524. R. S. Zhu and M. C. Lin, \u201cAb initio chemical kinetics for ClO reactions with HOx, ClOx and NOx (x=1, 2): A Review\u201d, Comput. Theoret. Chem., 965(2-3), 328-339 (2011).<br \/>\n525. R. S. Zhu and M. C. Lin, \u201cAb Initio Chemical Kinetics for Reactions of ClO with Cl2O2 Isomers\u201d, J. Chem. Phys., 134(5), 054307\/1-054307\/6 (2011).<br \/>\n526. W. F. Huang, P. Raghunath, and M. C. Lin, \u201cComputational Study on the Reactions of H2O2 on TiO2 Anatase (101) and Rutile (110) Surfaces\u201d, J. Comp. Chem., 32(6), 1065-1081 (2011).<br \/>\n527. T.-T. Wang, P. Raghunath, Y.-F. Lu, Y.-C. Liu, C.-H. Chiou and M. C. Lin, \u201cObservation of Significant Enhancement in the efficiency of a DSSC by InN Nanoparticles over TiO2-Nanoparticle Films\u201d, Chem. Phys. Lett., 510(1-3), 126-130 (2011).<br \/>\n528. H.-T. Chen, P. Raghunath and M. C. Lin, \u201cComputational Investigation of O2 Reduction and Diffusion on 25% Sr-doped LaMnO3 Cathodes in Solid Oxide Fuel Cells\u201d, Langmuir, 27(11), 6787-93 (2011).<br \/>\n529. C.-W. Wu, C.-W. Lu, Y.-P. Lee, Y.-J. Wu, B.-M. Cheng and M. C. Lin, \u201cBlue\/Near UV light emission from hybrid InN\/TiO2 nanoparticle films\u201d, J. Mater. Chem., 21, 8540-42 (2011).<br \/>\n530. C.-W. Wu, H. Matsui, N.-S. Wang and M. C. Lin, \u201cShock Tube Study on the Thermal Decomposition of Ethanol\u201d, J. Phys. Chem. A, 115, 8086-8092 (2011).<br \/>\n531. Z. Cheng, J.-H. Wang, YongMan Choi, Lei Yang, M. C. Lin and Meilin Liu, \u201cFrom Ni-YSZ to Sulfur-Tolerant Anode Materials for SOFCs: Electrochemical Behavior, in situ Characterization, Modeling, and Future Perspectives\u201d, Energy and Eviron. Sci., 4, 4380-4409 (2011).<br \/>\n532. A. Bagchi, Y.-H. Huang, Z. F. Xu, P. Raghunath, Y. T. Lee, C.-K. Ni, M. C. Lin and Y.-P. Lee, \u201cPhotodissociation dynamics of benzaldehyde (C6H5CHO) at 266, 248, and 193 nm&#8221;, Chemistry-An Asian Journal, 6 (11), 2961-2976 (2011).<br \/>\n533. M. L. Hause, N. Herath, Rongshun Zhu, M. C. Lin and A. G. Suits, \u201cRoaming-mediated isomerization in the photodissociation of nitrobenzene\u201d, Nature Chemistry, 3, 932\u2013937 (2011)<br \/>\n534. S.-T. Chang, C.-H. Wang, H.-Y. Du, H.-C. Hsu, C.-M. Kang, C.-C. Chen, C.-S. Wu, S.-C. Yen, W.-F. Huang, L.-C. Chen, M. C. Lin and K.-H. Chen, \u201cVitalizing Fuel Cells with Vitamin: Pyrolyzed Vitamin B12 as Non-precious Catalyst for Enhanced Oxygen Reduction Reaction of Polymer Electrolyte Fuel Cell\u201d, Energy and Eviron. Sci., 5, 5305-5314 (2012)<br \/>\n535. Shucheng Xu, H.-L. Chen and M. C. Lin, \u201cQuantum Chemical Prediction of Reaction Pathways and Rate Constants for the Reactions of Ox (x = 1 and 2) with Pristine and Defective Graphite (0001) Surfaces\u201d, J. Phys. Chem. C, 116 (2), 1841\u20131849 (2012).<br \/>\n536. K.-Y. Lai, Rongshun Zhu and M. C. Lin, \u201cWhy Mixtures of Hydrazine and Dinitrogen Tetroxide Are Hypergolic?\u201c, Chem. Phys. Lett., 537, 33-37 (2012).<br \/>\n537. R. S. Zhu, K.-Y. Lai and M. C. Lin, \u201cAb Initio Chemical Kinetics for the Hydrolysis of N2O4 isomers in the Gas Phase\u201d, J. Phys. Chem. A, 116 (18), 4466\u20134472 (2012).<br \/>\n538. M. H. Weng, H.-T. Chen, Y.-C Wang, S.-P. Ju, J.-G. Chang and M. C. Lin, &#8220;Kinetics and mechanisms for the adsorption, dissociation, and diffusion of Hydrogen in Ni and Ni\/YSZ slabs: A DFT study\u201d, Langmuir, 28, 5596-5605 (2012).<br \/>\n539. W.-F. Huang, H.-T. Chen and M. C. Lin, \u201cThe Adsorption and Reactions of SiClx (x=0-4) on Hydroxylated TiO2 Anatase (101) Surfaces: A Computational Study\u201d, Comput. Theoret. Chem., 993, 45-52(2012).<br \/>\n540. P. Raghunath and M. C. Lin, \u201cAb initio chemical kinetics for the ClOO + NO reaction: Effects of temperature and pressure on product branching formation\u201d, J. Chem. Phys., 137, 014315 (2012).<br \/>\n541. R. S. Zhu and M. C. Lin, \u201cKinetics and Mechanism of AP Combustion Initiation: A Complete Quantum Chemical Prediction for Reactions in Three Phases\u201d, Japan Society for Aeronautical and Space Sciences (JSASS), Vol. 10, No. ists28, pp. Pa_77-84 (2012).<br \/>\n542. C.-K. Huang, Z.-F. Xu, M. Nakajima, H. M. T. Nguyen, M. C. Lin, S. Tsuchiya and Y.-P. Lee, \u201cDynamics of the reactions of O(1D) with CD3OH and CH3OD studied with time-resolved Fourier-transform IR spectroscopy\u201d, J. Chem. Phys., 137, 164307 (2012).<br \/>\n543. R. S. Zhu, H.-L. Chen and M. C. Lin, \u201cThe Mechanism and Kinetics for Ammonium Dinitramide (ADN) Sublimation: A First-Principles Study\u201d, J. Phys. Chem. A, 116(44), 10836-41 (2012)<br \/>\n544. J. Park, Z. F. Xu, K. Xu and M. C. Lin, \u201cKinetics for the Reactions of Phenyl with Methanol and Ethanol: Comparison of Theory and Experiment\u201d, Proc Combust. Instit., 34, 473-482 (2013)<br \/>\n545. W.-F. Huang, Pin-Jiun Wu, Wei-Chih Hsu, Chih-Wei Wu, K. S. Liang and M. C. Lin, \u201cCarbon-doped TiO2 nanotubes: Experimental and computational studies\u201d, J. Theor. Compt. Chem., 12(3), 1350007 (2013)<br \/>\n546. P. Raghunath, W. F. Huang and M. C. Lin, \u201cQuantum Chemical Elucidation of the Mechanism for Hydrogenation of TiO2 Anatase Crystals\u201d, J. Chem. Phys., 138(15), 154705 (2013)<br \/>\n547. P. Raghunath, Y. M. Lee, S. Y. Wu, J. S. Wu and M. C. Lin*, \u201cAb Initio Chemical Kinetics for Reactions of H Atoms with SiHx (x = 1-3) Radicals and Related Unimolecular Decomposition Processes\u201d, Int. Journal of Quantum Chemistry, 113, 1735-46 (2013)<br \/>\n548. W.-S. Teng, L. V. Moskaleva, H.-L. Chen and M. C. Lin, \u201cAb Initio Chemical Kinetics for H + NCN: Prediction of NCN Heat of Formation and Reaction Product Branching via Doublet and Quartet Surfaces\u201d, J. Phys. Chem. A, 117 (28), 5775\u20135784 (2013)<br \/>\n549. W. F. Huang, H. T. Chen* and M. C. Lin*, \u201cComputational Investigation of the Adsorption and Reactions of SiHx (x=0-4) on TiO2 Anatase (101) and Rutile (110) Surfaces\u201d, Int J. Quantum Chem., 113 (12), 1696\u20131708 (2013)<br \/>\n550. R. S. Zhu, P. Raghunath and M. C. Lin, \u201cEffect of Roaming Transition States Upon Product Branching in the Thermal Decomposition of CH3NO2\u201d, J. Phys. chem. A, 117(32), 7308\u20137313 (2013).<br \/>\n551. K. A. Freel, M. N. Sullivan, J. Park, M. C. Lin and M. C. Heaven, \u201cStructure in the Visible Absorption Bands of Jet-Cooled Phenylperoxy Radicals\u201d, J. Phys. Chem. A, 117(32), 7484\u20137491 (2013).<br \/>\n552. M. V. R. Raju, P. Raghunath, M. C. Lin and H. C. Lin, \u201cAn Acid-Base Controllable Hierarchical Nanostructure from a NIR-Absorbing Conjugated Polyrotaxane-Based Optical Molecular Switch\u201d, Macromolecules, 46, 6731\u20136743 (2013).<br \/>\n553. P. Raghunath and M. C. Lin, \u201cAb initio chemical kinetics for SiH2 + Si2H6 and SiH3 + Si2H5 reactions and the related unimolecular decomposition of Si3H8 under a-Si:H-CVD conditions\u201d, J. Phys. Chem. A, 117(42), 10811\u201310823 (2013).<br \/>\n554. S. Y. Wu, Y. M. Lee, J. S. Wu and M. C. Lin, \u201cAb Initio Chemical Kinetics for the Unimolecular Decomposition of Si2H5 Radical and Related Reverse Bimolecular Reactions\u201d, Int. J. Quantum Chem., 114(4), 278-288 (2014).<br \/>\n555. V-T Mai Tam, P. Raghunath, Xuan T. Le, Lam K. Huynh, Pham-Cam Nam and M. C. Lin, \u201cAb Initio Chemical Kinetics for the HCCO + OH Reaction\u201d, Chem. Phys. Lett., 592, 175-181 (2014).<br \/>\n556. P. Raghunath, N. T. Nghia and M. C. Lin, \u201cAb Initio Chemical Kinetics of Key Processes in the Hypergolic Ignition of Hydrazine and Nitrogen Tetroxide\u201d, Adv. Quantum Chem., 69, 253-301 (2014).<br \/>\n557. H. M. T. Nguyen, H.-Y. Tang, W.-F. Huang and M. C. Lin, \u201cMechanisms for Reactions of Trimethylaluminum with Molecular Oxygen and Water\u201d, Computational and Theoretical Chemistry, 1035, 39-43 (2014).<br \/>\n558. Y.-T. Su, H.-Y. Lin, R. Putikam, H. Matsui, M. C. Lin* and Y.-P. Lee*, \u201cExtremely rapid self-reaction of the simplest Criegee intermediate CH2OO and its implications in atmospheric chemistry\u201d, Nature chemistry, 6, 477-483 (2014).<br \/>\n559. S.-C. Lan, P. Raghunath, Y.-H. Lu, Y.-C. Wang, S.-W. Lin, C.-M. Liu, J.-M. Jiang, M. C. Lin and K.-H. Wei, \u201cSymmetry and Coplanarity of Organic Molecules Affect their Packing and Photovoltaic Properties in Solution-Processed Solar Cells\u201d, ACS Applied Materials &amp; Interfaces, 6(12), 9298-306 (2014).<br \/>\n560. P. Raghunath, Y.-H. Lin and M. C. Lin, \u201cAb Initio Chemical Kinetics for the N2H4 + NOx (x=1-3) Reactions and Related Reverse Processes\u201d, Computational and Theoretical Chemistry, 1046, 73-80 (2014).<br \/>\n561. S.-C. Huang, N. T. Nghia, R. Putikam, H. M. T. Nguyen, M. C. Lin, S. Tsuchiya and Y.-P. Lee, \u201cReaction Dynamics of O(1D)+HCOOD\/DCOOH Investigated with Time-resolved Fourier-transform Infrared Emission Spectroscopy\u201d, The Journal of Chemical Physics, 141, 154313 (2014)<br \/>\n562. J.-M. Jiang, P. Raghunath, H.-K. Lin, Y.-C. Lin, M. C. Lin and K.-H. Wei, \u201cLocation and number of selenium atoms in two-dimensional conjugated polymers affects their band gap energies and photovoltaic performance\u201d, Macromolecules, 47 (20), 7070\u20137080 (2014)<br \/>\n563. A. Singh, R. Singh, M. Shellaiah, E. C. Prakash, H.-C. Chang, P. Raghunath, M. C. Lin and H. C. Lin, \u201cA New Pyrene-Based Aggregation Induced Ratiometric Emission Probe for Selective Detections of Trivalent Metal Ions and its Living Cell Application\u201d, Sensors and Actuators B: Chemical, 207, 338-345 (2015)<br \/>\n564. Y. M. Choi, V. Srinivasadesikan, M. C. Lin and J. Kang, \u201cA Dihydrogen Phosphate Selective Anion Receptor Based on Acylhydrazone and Pyrazole\u201d, New Journal of Chemistry, 39, 650-658 (2015).<br \/>\n565. C. L. Wei, T. C. Chen, P. Raghunath, M. C. Lin and H. C. Lin, \u201cNovel Asymmetrical Single- and Double-Chiral Liquid Crystal Diads with Wide Blue Phase Ranges\u201d, RSC Advances, 5, 4615-4622 (2015).<br \/>\n566. T.-N. Nguyen, R. Putikam and M. C. Lin, \u201cA Novel and Facile Decay Path of Criegee Intermediates by Intramolecular Insertion Reactions via Roaming Transition States\u201d, J. Chemical Physics, 142(12),124312 (2015)<br \/>\n567. V. Srinivasadesikan, P. Raghunath and M. C. Lin, \u201cQuantum chemical investigation on the role of Li adsorbed on anatase (101) surface nano-materials on the storage of molecular hydrogen\u201d, Journal of Molecular Modeling, 21(6):142 (2015)<br \/>\n568. C. L. Wei, T. C. Chen, P. Raghunath, M. C. Lin and H. C. Lin, \u201cHydrogen-Bonded Effects on Supramolecular Blue Phase Liquid Crystal Dimeric Complexes\u201d, RSC Adv., 5, 54629 (2015).<br \/>\n569. Z. F. Xu, P. Raghunath and M. C. Lin, \u201cAb initio chemical kinetics for the CH3 + O (3p) reaction and related isomerization\/decomposition of CH3O and CH2OH radicals\u201d, J. Phys. Chem. A, 119(28),7404-7417 (2015).<br \/>\n570. C.-C. Chuang, C.-K. Lin, T. T. Wang, V. Srinivasadesikan, P. Raghunath and M. C. Lin, \u201cComputational and Experimental Studies on the Effect of Hydrogenation of Ni-doped TiO2 Anatase Nanoparticles for the Application of Water Splitting\u201d, RSC Adv., 5, 81371-81377 (2015).<br \/>\n571. B.-R. Gu, P. Raghunath, G. C. Cheng, Y. S. Chen, J. S. Wu and M. C. Lin, \u201cKinetic Modeling of Hypergolic Ignition of N2H4-NTO Mixtures at Low Temperatures and the Sawyer-Glassman Experiment on Reactions of N2H4 with NOx(x=1,2) at High Temperatures\u201d, Int J. Energetic Mater. and Chemical Propulsion, 14(5), 357\u2013379 (2015)<br \/>\n572. T. Senthil Pandian, V. Srinivasadesikan, M. C. Lin and Jongmin Kang, \u201cNitrite Selective Anion Receptor Based on 1-Methyl-1H-perimidine\u201d, Tetrahedron, 71(40), 7782-7788 (2015).<br \/>\n573. T. S. Pandian, V. Srinivasadesikan, M. C. Lin and Jongmin Kang, \u201cA Selective Acetate Anion Binding Receptor: Participation via Cationic CH3 Donors\u201d, Tetrahedron, 71(43), 8350-8356 (2015).<br \/>\n574. J.-M. Jiang, P. Raghunth, Y.-C. Lin, H.-K. Lin, C.-L. Ko, Y.-W. Su, M. C. Lin and K.-H. Wei, \u201cLinear solubilizing side chain substituents enhance the photovoltaic properties of two-dimensional conjugated benzodithiophene-based polymers\u201d, Polymer, 79, 262\u2013270 (2015)<br \/>\n575. R. Arumugaperumal, V. Srinivasadesikan, M. V. R. Raju, M.-C. Lin, T. Shukla, R. Singh and H.-C. Lin, \u201cAcid\/Base and H2PO4- Controllable High Contrast Optical Molecular Switches with a Novel BODIPY Functionalized [2]Rotaxane\u201d, ACS Applied Materials &amp; Interfaces, 7, 26491-26503 (2015)<br \/>\n576. M. Shellaiah, T. Simon, V. Srinivasadesikan, C.-C. Lin, K. W. Sun, F. H. Ko, M. C. Lin and H.-C. Lin, \u201cNovel pyrene containing monomeric and dimeric supramolecular AIEE active nano-probes utilized in selective \u201coff\u2013on\u201d trivalent metal and highly acidic pH sensing with live cell applications\u201d, J. Mater. Chem. C ,4, 2056-2071 (2016)<br \/>\n577. M. K. Pola, M. V. R. Raju, C. M. Lin, R. Putikam, M. C. Lin, C. P. Epperla, H. C. Chang, S. Y, Chen and H. C. Lin, &#8220;A Fully-Aqueous Red-Fluorescent Probe for Selective Optical Sensing of Hg2+ and Its Application in Living Cells&#8221;, Dyes Pigments, 130, 256-265 (2016).<br \/>\n578. Y. H. Lin, P. Raghunath and M. C. Lin, \u201cA computational study on the energetics and mechanisms for the dissociative adsorption of SiHx (x=1-4) on W(111) surface\u201d, Applied Surface science. 362, 551-556 (2016).<br \/>\n579. P.-C. Nam, P. Raghunath, L. K. Huynh, S. Xu and M. C. Lin, \u201cAb initio Chemical Kinetics for the HCCO + H Reaction\u201d, Combustion Science and Technology, 188, 1095-1114 (2016).<br \/>\n580. J. Jo, P. Raghunath, M. C. Lin, J. Kang, \u201cAnion receptors based on 4-Nitrophenylhydrazone\u201d, Tetrahedron Letters, 57, 3208-3214 (2016)<br \/>\n581. T. N-M Le, P. Raghunath, L. K. Huynh and M. C. Lin, \u201cA Computational Study on the Adsorption Configurations and Reactions of SiHx(x=1-4) on Clean and H-covered Si(100) Surfaces\u201d, Applied Surface Science, 387, 546-556 (2016)<br \/>\n582. T. Simon, M. Shellaiah, V. Srinivasadesikan, C. C. Lin, F. H. Ko, K. W. Sun and M. C. Lin, \u201cA simple pyrene based AIEE active schiff base probe for selective naked eye and fluoresence off\u2013on detection of trivalent cations with live cell application\u201d, Sensors and Actuators B, 231, 18-29 (2016)<br \/>\n583. T. Simon, M. Shellaiah, V. Srinivasadesikan, C.-C. Lin, F. H. Ko, K. W. Sun and M. C. Lin, \u201cNovel anthracene and pyridine-containing schiff base probe for selective \u201cOFF-ON\u201d fluorescent determination of Cu2+ ions towards live cell application\u201d, New J. Chem., 40, 6101-6108 (2016)<br \/>\n584. C.-C. Han, L.-H. Yang, P. Raghunath, M.-C. Lin, R. Kumara and H.-C. Lin, \u201cLateral fluoro-substitution and chiral effects on supramolecular liquid crystals containing rod-like and H-bonded bent-core mesogens\u201d, RSC Adv., 6, 110482-492 (2016)<br \/>\n585. C.-K. Lin, C.-C. Chuang, P. Raghunath, V. Srinivasadesikan, T. T. Wang and M. C. Lin, \u201cQuantum-chemical Prediction of the Effects of Ni-Loading on the Hydrogenation and Water-Splitting Efficiency of TiO2 Nanoparticles with an Experimental Test\u201d, Chemical Physics Letters, 667, 278-283 (2017)<br \/>\n586. T. Shukla, R. Arumugaperumal, P. Raghunath, M.-C. Lin, C.-M. Lin, H.-C. Lin, \u201cNovel supramolecular conjugated polyrotaxane as an acid-base controllable optical molecular switch\u201d, Sensors and Actuators B, 243, 84\u201395 (2017)<br \/>\n587. M. K. Pola, K. M. Boopathi, H. Padhy, P. Raghunath, A. Singh, M. C. Lin, C.-W. Chu, H.-C. Lin, \u201cSynthesis of fluorinated benzotriazole (BTZ)- and benzodithiophene (BDT)-based low-bandgap conjugated polymers for solar cell applications\u201d, Dyes and Pigments, 139, 349-360 (2017)<br \/>\n588. T.-N. Nguyen, Y.-M. Lee, J.-S. Wu and M. C. Lin, \u201cCapturing of H and H2 by SiHx+ (x\u22644) ions: Comparison between Langevin and quantum statistical models\u201d, Japanese Journal of Applied Physics, 56, 026101 (2017)<br \/>\n589. T.-N. Nguyen and M. C. Lin, \u201cAb Initio Chemical Kinetics for SiHx reactions with Si2Hy (x = 1,2,3,4; y = 6,5,4,3; x + y =7) under a-Si:H CVD Conditions\u201d, International Journal of Chemical Kinetics, 49(3), 197-208 (2017)<br \/>\n590. P. Raghunath, Y.-P. Lee and M. C. Lin, \u201cComputational Chemical Kinetics for the Reaction of Criegee Intermediate CH2OO with HNO3 and Its Catalytic Conversion to OH and HCO\u201d, J. Phys. Chem. A,121(20), 3871-3878 (2017)<br \/>\n591. T.-T. Wang, P. Raghunath, Y.-G. Lin, M. C. Lin \u201cSynergistic Effect of Hydrogenation and Thiocyanate Treatments on Ag-loaded TiO2 Nanoparticles for Solar-to-Hydrogen Conversion\u201d, J. Phys. Chem. C, 121, 9681\u20139690 (2017)<br \/>\n592. T. N. Nguyen, Y. M. Lee, J. S. Wu and M. C. Lin, \u201cAb Initio Chemical Kinetics for the Thermal Decomposition of SiH4+ Ion and Related Reverse Ion\u2013Molecule Reactions of Interest to PECVD of a-Si:H Films\u201d, Plasma Chem Plasma Process, 37, 1249-1264 (2017)<br \/>\n593. R. Singh, H.Y. Wu, A. K. Dwivedi, A. Singh, C. M. Lin, P. Raghunath, M. C. Lin, T. K. Wu, K. H. Wei, and H. C. Lin*, &#8220;Monomeric and Aggregation Emissions of Tetraphenylethene in a Photo-Switchable Polymer Controlled by Cyclization of Diarylethene and Solvent Conditions&#8221;, J. Mater. Chem. C, 5, 9952-9962 (2017).<br \/>\n594. T. Billo, F.-Y. Fu, P. Raghunath, I. Shown, W.-F. Chen, H.-T. Lien, T.-H. Shen, J.-F. Lee, T.-S. Chan, M. C. Lin, J.-S. Hwang, C.-H. Lee, L.-C. Chen and K.-H. Chen, \u201cNi-Nanocluster Modified Black TiO2 with Dual Active Sites for Selective Photocatalytic CO2 Reduction\u201d, Small, 1702928 (2017).<br \/>\n595. T. S. Pandian, V Srinivasadesikan, M. C. Lin, J. IL Park and Jongmin Kang \u201cA Hydrogen Pyrophosphate Selective Anion Receptor Based on Thiosemicarbazone\u201d, Bulletin of the Korean Chemical Society, 38, 1435-1442 (2017)<br \/>\n596. I. Shown, S. Samireddi, Y.-C. Chang, R. Putikam, P.-H. Chang, A. Sabbah, F.-Y. Fu, W.-F. Chen, C.-I Wu, T.-Y. Yu, P.-W. Chung, M. C. Lin, L.-C. Chen and K.-H. Chen, \u201cCarbon-doped SnS2 nanostructure as a high-efficiency solar fuel catalyst under visible light\u201d, Nature Comm., 9, 169 (2018)<br \/>\n597. P. Raghunath and M. C. Lin. \u201cA Novel Mechanism for Isomerization of N2O4 and its Implication for the Reaction with H2O and Acid Rain Formation\u201d, Int. J. Quantum Chemistry, 118 (12), e25560 (2018).<br \/>\n598. R. Arumugaperumal, P. Venkatesan, T. Shukla, P. Raghunath, R. Singh, S. P. Wu, M. C. Lin, and H. C. Lin, \u201cMulti-Stimuli-Responsive High Contrast Fluorescence Molecular Controls with a Far-Red Emitting BODIPY-Based [2]Rotaxane\u201d, Sensor. Actuat. B: Chem., 270, 382-395 (2018).<br \/>\n599. P. Raghunath and M. C. Lin, \u201cIsomerization of N2O4 in Solid N2H4 and its Implication for Explosion of N2O4 &#8211; N2H4 Solid Mixtures\u201d, J. Phys. Chem. C, 122, 23501\u201323505 (2018)<br \/>\n600. R. Arumugaperumal, P. Raghunath, M. C. Lin and W.-S. Chung, \u201cDistinct Nanostructures and Organogel Driven by Reversible Molecular Switching of a Tetraphenylethene-Involved Calix[4]arene-Based Amphiphilic [2]Rotaxane\u201d, Chem. Mater., 30 (20), 7221\u20137233 (2018).<br \/>\n601. T. L. Huyen, L. V. Duong, M. T. Nguyen, M. C. Lin, \u201cA model study on the mechanism and kinetics for the dissociation of water anion\u201d, Int. J. Chem. Kinet., 51, 610-617 (2019).<br \/>\n602. T.-T. Wang, P. Raghunath, Y.-C. Lin, Y.-G. Lin, M.-C. Lin, \u201cEffective hydrogenation of TiO2 photocatalysts with CH3OH for enhanced water splitting: A computational and X-ray study\u201d, Applied Surface Science, 488, 546\u2013554 (2019)<br \/>\n603. T. L Huyen, P. Raghunath, M. C Lin, \u201cAb Initio Chemical Kinetics for Hypergolic Reactions of Nitrogen Tetroxide with Hydrazine and Methyl Hydrazine\u201d, Computational and Theoretical Chemistry, 1163, 112505 (2019).<br \/>\n604. F.-Y. Fu, I. Shown, C.-S. Li, P. Raghunath, T.-Y. Lin, T. Billo, H.-L. Wu, C.-I Wu, P.-W. Chung, M.-C. Lin, L.-C. Chen and K.-H. Chen, \u201cKSCN Induced Interfacial Dipole in Black TiO2 for Enhanced Photocatalytic CO2 Reduction\u201d, ACS Appl. Mater. Interfaces, 11(28), 25186-25194 (2019).<br \/>\n605. L. Lanfri, Y.-L. Wang, T. V. Pham, N. T. Nguyen, M. B. Paci, M. C. Lin and Y.-P. Lee, \u201cInfrared Emission from Photodissociation of Methyl Formate [HC(O)OCH3] at 248 and 193 nm: Absence of Roaming Signature\u201d, J. Phys. Chem. A, 123(29), 6130-6143 (2019)<br \/>\n606. T. L. Huyen, T. V. Pham, M. T. Nguyen and M. C. Lin, \u201cA model study on the mechanism and kinetics for reactions of the hydrated electron with H3O+ and NH4+ ions\u201d, Chemical Physics Letters, 731, 136604 (2019)<br \/>\n607. T. N. Nguyen, Y. M. Lee, J. S. Wu and M. C. Lin, \u201cAb Initio Chemical Kinetics for the Thermal Decomposition of SiH2+ and SiH3+ Ions and Related Reverse Ion\u2013Molecule Reactions of Interest to PECVD of \u03b1-Si:H Films\u201d, Plasma Chemistry and Plasma Processing, 39 (6), 1559\u20131573 (2019)<br \/>\n608. H.-T. Chen, T. V. Pham and M. C. Lin, \u201cComputational Study on the Mechanisms and Rate Constants for the O(3P,1D) + OCS Reactions\u201d, J. Phys. Chem. A, 123, 8358\u20138364 (2019)<br \/>\n609. T. V. Pham, H. M. T. Nguyen, M. C. Lin, \u201cOn the Hypergolicity of Trimethyl Aluminum in Air\u201d, Comp. Theor. Chem., 1173(1), 112668 (2020)<br \/>\n610. T.-T. Wang, Y.-C. Lin, Y.-G. Lin, M. C. Lin, \u201cAu-assisted Methanol-hydrogenated Titanium Dioxide for Photocatalytic Evolution of Hydrogen\u201d, Catalysis Today, 358, 143-148 (2020).<br \/>\n611. H.-W. Cheng, P. Raghunath, K.-l. Wang, P. Cheng, T. Haung, Q. Wu, J. Yuan, Y.-C. Lin, H.-C. Wang, Y. Zou, Z.-K. Wang, M. C. Lin, K.-H. Wei, Y. Yang, \u201cPotassium-Presenting Zinc Oxide Surfaces Induce Vertical Phase Separation in Fullerene-Free Organic Photovoltaics\u201d, Nano Lett., 20 (1), 715-721 (2020).<br \/>\n612. T.-T. Wang, C.-L. Chiang, Y.-C. Lin, V. Srinivasadesikan, M. C. Lin, Y.-G. Lin, \u201cKSCN-activation of Hydrogenated NiO\/TiO2 for Enhanced Photocatalytic Hydrogen Evolution\u201d, Appl. Surf. Sci., 511, 145548 (2020).<br \/>\n613. W.-F. Huang, S.-T. Chang, H.-C. Huang, C.-H. Wang, L.-C. Chen, K.-H. Chen, M. C. Lin, \u201cOn the Reduction of O2 on Cathode Surfaces of Co-corrin and Co-porphyrin: A Computational and Experimental Study on Their Relative Efficiencies in H2O\/H2O2 Formation\u201d, The Journal of Physical Chemistry C, 124 (8), 4652-4659 (2020)<br \/>\n614. M. Rameez, S. Shahbazi, P. Raghunath, M. C. Lin, C.-H. Hung and Eric W.-G. Diau, \u201cDevelopment of Novel Mixed Halide\/Superhalide Tin-Based Perovskites for Mesoscopic Carbon-Based Solar Cells\u201d, The Journal of Physical Chemistry Letters, 11(7), 2443-2448 (2020)<br \/>\n615. M. Rameez, Eric Y.-R. Lin, P. Raghunath, S. Narra, D. Song, M. C. Lin, C.-H. Hung and Eric W.-G. Diau, \u201cDevelopment of Hybrid Pseudohalide Tin Perovskites for Highly Stable Carbon-Electrode Solar Cells\u201d, ACS Applied Materials &amp; Interfaces, 12(19), 21739-21747 (2020).<br \/>\n616. R. Arumugaperumal, W.-L. Hua, P. Raghunath, M. C. Lin and W.-S. Chung, \u201cControlled Sol-Gel and Diversiform Nanostructure Transitions by Photoresponsive Molecular Switching of Tetraphenylethene- and Azobenzene-Functionalized Organogelators\u201d, ACS Appl. Mater. Interfaces, 12(26), 29650-29660 (2020).<br \/>\n617. M. Shellaiah, N. Thirumalaivasan, B. Aazaad, K. Awasthi, K.W. Sun, S.-P. Wu, M. C. Lin and N. Ohta, &#8220;Novel rhodamine probe for colorimetric and fluorescent detection of Fe3+ ions in aqueous media with cellular imaging&#8221;, Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 242, 118757 (2020).<br \/>\n618. T. V. Pham, T. J. Tsay and M. C. Lin, \u201cThermal decomposition of N2O near 900 K studied by FTIR spectrometry: Comparison of experimental and theoretical O(3P) formation kinetics\u201d, International Journal of Chemical Kinetics, 52 (10), 632-644 (2020).<br \/>\n619. T. L. Huyen, P. Raghunath and M. C. Lin, \u201cAb Initio Chemical Kinetics for Nitrogen Tetroxide Reaction with 1,1- and 1,2- Dimethylhydrazines\u201d, Propellants, Explosives, Pyrotechnics, 45, 1478-1486 (2020).<br \/>\n620. T. L. Huyen, P. Raghunath and M. C. Lin, \u201cQuantum chemical modeling of spontaneous reactions of N2O4 with hydrazines in CCl4 solution at low temperature\u201d, Computational and Theoretical Chemistry, 1188, 112951 (2020).<br \/>\n621. R. Arumugaperumal, M. Shellaiah, V. Srinivasadesikan, K. Awasthi, K. W. Sun, M. C. Lin, N. Ohta and W.-S. Chung, \u201cDiversiform Nanostructures Constructed from Tetraphenylethene and Pyrene-based Acid-Base Controllable Molecular Switching Amphiphilic [2]Rotaxanes with Tunable Aggregation-Induced Static Excimers\u201d, ACS Applied Materials &amp; Interfaces, 12, 45222-45234 (2020).<br \/>\n622. H. P. Trac, T. L. Huyen and M. C. Lin, \u201cA Computational Study on the Redox Reactions of Ammonia and Methylamine with Nitrogen Tetroxide\u201d, J. Phys. Chem. A, 124(48), 9923\u20139932 (2020).<br \/>\n623. S. Palani, I. Shown, A. Sabbah, P. Raghunath, J.-L. Chen, W.-F. Chen, M. C. Lin, K.-H. Chen and L. C. Chen, \u201cElectronic structure modulation of isolated Co-N4 electrocatalyst by sulfur for improved pH-universal hydrogen evolution reaction\u201d, Nano Energy, 80, 105544 (2021).<br \/>\n624. C. Gouda, D. Barik, C. Maitra, K. C. Liang, F. C. Ho, V. Srinivasadesikan, M. C. Lin, S. P. Wu, and H. C. Lin, &#8220;Application of Stimuli-Responsive FRET Behavior toward Cyanide Detection in Photo-Switchable [2]Pseudorotaxane Polymer Containing BODIPY Donor and Merocyanine Acceptor&#8221;, J. Mater. Chem. C, 9, 2321-2333 (2021).<br \/>\n625. R. Arumugaperumal, M. Shellaiah, Y.-K. Lai, P. Venkatesan, P. Raghunath, S.-P. Wu, M, C. Lin, K. W. Sun, W.-S. Chung and H.-C. Lin, \u201cAcid-base controllable nanostructures and the fluorescence detection of H2PO4- by the molecular shuttling of tetraphenylethene-based [2]rotaxanes\u201d, Journal of Materials Chemistry C, 9, 3215-3228 (2021)<br \/>\n626. W.-Y. Chen, T.-N. Nguyen, M. C. Lin, N.-S. Wang and H. Matsui, \u201cExperimental and theoretical studies on the reaction of H atom with C3H6\u201d, Int. J. Chem. Kinet., 53(5), 646-659 (2021).<br \/>\n627. Y.-C. Lin, C.-K. Peng, S.-C. Lim, C.-L. Chen, T.-N. Nguyen, T.-T. Wang, M. C. Lin, Y.-J. Hsu, S.-Y. Chen and Y.-G. Lin, \u201cTailoring the Surface Oxygen Engineering of a Carbon-Quantum-Dot-Sensitized ZnO@H-ZnO1-x Multijunction toward Efficient Charge Dynamics and Photoactivity Enhancement\u201d, Appl. Catal. B: Environ., 285, 119846 (2021).<br \/>\n628. M. Shellaiah, Y.-T. Chen, N. Thirumalaivasan, B. Aazaad, K. Awasthi, K. W. Sun, S.-P. Wu, M. C. Lin and N. Ohta, &#8220;Pyrene-Based AIEE Active Nanoprobe for Zn2+ and Tyrosine Detection Demonstrated by DFT, Bioimaging, and Organic Thin-Film Transistor&#8221;, ACS Applied Materials &amp; Interfaces, 13 (24), 28610\u201328626 (2021).<br \/>\n629. T. V. Pham and M. C. Lin, \u201cAb Initio Quantum-Chemical and Kinetic Studies of the O(1D) + N2(X1Sg+) Spin-Forbidden Quenching Process\u201d, Chemical Physics Letters, 780, 138955 (2021).<br \/>\n630. T.-N. Nguyen, P. H. Trac and M. C.Lin, \u201cFragmentation of two dimethylaluminum peroxy radical isomers formed by the hypergolic reaction of trimethyl aluminum with O2\u201d, Computational and Theoretical Chemistry, 1205, 113436 (2021)<br \/>\n631. T.-T. Wang, C.-L. Chiang, S. Narra, J.-L. Lin, S.-W. Chien, J.-C. Yu, E. Diau, Y.-G. Lin, M. C. Lin, \u201cSynergistic effects of plasmonic gold and perovskite-type SrTiO3 for enhanced photocatalytic performance of TiO2 nanotube arrays\u201d, J. Phys. Chem. C, 125, 44, 24340\u201324349 (2021)<br \/>\n632. T.-T. Wang, Y.-T. Yang, S.-C. Lim, C.-L. Chiang, J.-S. Lim, Y.-C. Lin, C.-K. Peng, M. C. Lin and Y.-G. Lin, \u201cHydrogenation engineering of bimetallic Ag\u2013Cu-modified titania photocatalysts for production of hydrogen\u201d, Catalysis Today, 388-389, 79-86 (2022)<br \/>\n633. T. V. Pham and M. C. Lin, \u201cInvestigation of Product Formation in the O(1D, 3P) + N2O Reactions: Comparison of Experimental and Theoretical Kinetics\u201d, J. Phys. Chem. A, 126, 1103-1113 (2022)<br \/>\n634. M. Shellaiah, K. Awasthi, S. Chandran, B. Aazaad, K. W. Sun, N. Ohta, S. P. Wu and M. C. Lin, \u201cMethylammonium Tin Tribromide Quantum Dots for Heavy Metal Ion Detection and Cellular Imaging\u201d, ACS Applied Nano Materials, 5, 2859-2874 (2022).<br \/>\n635. M. K. Hussien, A. Sabbah, M. Qorbani, M. H. Elsayed, P. Raghunath, T.-Y. Lin, S. Quadir, H.-Y. Wang, H.-L. Wu, D.-L. M. Tzou, M. C. Lin, P.-W. Chung, H.-H. Chou, L.-C. Chen and K.-H. Chen, \u201cMetal-free four-in-one modification of g-C3N4 for superior photocatalytic CO2 reduction and H2 evolution\u201d, Chemical Engineering Journal, 430, 132853 (2022)<br \/>\n636. K. P. K. Reddy, M. Rameez, T.-T. Wang, K. Wang, E. Y.-R. Lin, M. C. Lin, E. W.-G. Diau, C.-H. Hung, Y.-L. Chueh, K. P. Pande, P.-T. Lee, \u201cScreen-printed Hole Transport Material-free perovskite solar cell for water splitting incorporating Cu-NiCo2O4 catalyst\u201d, Materials Letters, 313, 131838 (2022)<br \/>\n637. T. V. Pham and M. C. Lin, \u201cA Theoretical Study on the Mechanism and Kinetics of the Dimeric TrimethylAluminum + O2 Reaction in the Gas Phase: A Potential Chain-initiation in the Hypergolic Combustion of TMA in Air\u201d, Comp. and Theor. Chem., 1212, 113695 (2022).<br \/>\n638. R. Arumugaperumal, D. Y. Alene, M. Shellaiah, V. Srinivasadesikan, K. Awasthi, K. W. Sun, M. C. Lin, N. Ohta and W.-S. Chung, \u201cConstruction of Anisotropic Nanostructures by Self-Assembly of Aggregation-Induced Emission Driven from Tris-Branched [2]Rotaxane Based Molecular Zipper\u201d, Materials Today Chemistry, 24, 100997 (2022).<br \/>\n639. M. Shellaiah, N. Thirumalaivasan, B. Aazaad, K. Awasthi, K. W. Sun, S.-P. Wu, M. C. Lin and N. Ohta, \u201cAn AIEE Active Anthracene-Based Nanoprobe for Zn2+ and Tyrosine Detection Validated by Bioimaging Studies\u201d, Chemosensors, 10, 381 (2022)<br \/>\n640. S. Vijayakumar, S. Venkatesan, M.-C. Lin and P. Vediappen, \u201cHighly sensitive and selective detection of tryptophan by antipyrine based fluorimetric sensor\u201d, Journal of Molecular Structure, 1272, 134241 (2023).<br \/>\n641. S. Vijayakumar, S. Venkatesan, M.-C. Lin and P. Vediappen, \u201cDevelopment of optical sensor for the detection of alanine\u201d, Journal of Photochemistry &amp; Photobiology, A: Chemistry, 435, 114338 (2023).<br \/>\n642. H. A. E. Omr, R. Putikam, M. K. Hussien, A. Sabbah, T.-Y. Lin, K.-H. Chen, H.-L. Wu, S.-P. Feng, M. C. Lin and H Lee, \u201cDesign of sculptured SnS\/g-C3N4 photocatalytic nanostructure for highly efficient and selective CO2 conversion to methane\u201d, Applied Catalysis B: Environmental, 324, 122231 (2023).<br \/>\n643. S. Vijayakumar, S. Venkatesan, M. C. Lin and P. Vediappen, \u201cHighly Sensitive and Selective Detection of Melatonin in Biofluids by Antipyrine Based Hluorophore\u201d, Journal of Fluorescence, 33, 383-392 (2023)<br \/>\n644. L. Raja, S. Venkatesan, M. C. Lin and P. Vediappen, \u201cA turn-on fluorescent sensor for the detection of putrescine in fish samples using thiazole derivative\u201d, Journal of Photochemistry and Photobiology A: Chemistry, 438, 114546 (2023).<br \/>\n645. L. Raja, S. Venkatesan, M. C. Lin and P. Vediappen, \u201cGreen synthesis of naphthyl derivative as an optical sensor for the detection of l-carnitine in food samples\u201d, The Journal of Biological and Chemical Luminescence, 38, 224\u2013231 (2023)<br \/>\n646. M. K. Hussien, A. Sabbah, M. Qorbani, M. H. Elsayed, S. Quadir, R. Putikam, D.-L. M. Tzou, S.-C. Haw, H.-H. Chou, N. Q. Thang, M. C. Lin, L.-C. Chen and K. H. Chen, \u201cNumerous Defects Induced by Exfoliation of Boron-Doped g-C3N4 Towards Active Sites Modulation for Highly Efficient Solar-to-Fuel Conversion\u201d, Materials Today Sustainability, 22, 100359 (2023).<br \/>\n647. R. Lavanya, V. Srinivasadesikan, M. C. Lin and V. Padmini, \u201cDevelopment of an optical biosensor for the determination of choline in human biofluids\u201d, Journal of Molecular Structure, 1280, 135040 (2023)<br \/>\n648. Y. P. Reddy, V. Srinivasadesikan, R. Balamurugan, M. C. Lin and S. Anwar, \u201cSynthesis of Tetrahydrochromenes and Dihydronaphthofurans via Cascade Process of [3+3] and [3+2] Annulation Reactions: Mechanistic Insight for 6-endo-trig and 5-exo-trig Cyclisation\u201d, RSC Advances, 13, 5796-5803 (2023).<br \/>\n649. D. Y. Alene, V. Srinivasadesikan, M. C. Lin and W.-S. Chung, &#8220;Construction of Mechanically Interlocked Fluorescence Photoswitchable [2]Rotaxane with Aggregation-Induced Emission and Molecular Shuttling Behaviors&#8221;, The Journal of Organic Chemistry, 88(9), 5530-5542 (2023).<br \/>\n650. R. Lavanya, V. Srinivasadesikan, M. C. Lin and V. Padmini, \u201cHighly Selective Detection of Citrulline Using Curcumin Analogue and its Application in Food Samples with Logic Gate Behaviour\u201d, Journal of Photochemistry &amp; Photobiology, A: Chemistry, Journal of Molecular Structure, 1288, 135771 (2023)<br \/>\n651. P. Sabhapathy, P. Raghunath, A. Sabbah, I. Shown, K. S. Bayikadi, R.-K. Xie, V. Krishnamoorthy, M.-C. Lin, K.-H. Chen and L.-C. Chen, \u201cAxial Chlorine Induced Electron Delocalization in Atomically Dispersed FeN4 Electrocatalyst for Oxygen Reduction Reaction with Improved Hydrogen Peroxide Tolerance\u201d, Small, 19(45), 2303598 (2023).<br \/>\n652. H. A. E. Omr, R, Putikam; S,-P, Feng, M.-C. Lin and Hyeonseok Lee, \u201cSynergistic role of Cu-C and Cu-N dual bonding of nanostructured g-C3N4\/Cu2SnS3 photocatalysts for efficient CO2 conversion to CO\u201d, Applied Catalysis B: Environmental, 339, 123103 (2023).<br \/>\n653. M. M. M. Ahmed, Y.-T. Liu, S. Venkatesan, M. C. Wu, H. M. Nail, D.-L. M. Tzou, M.-C. Lin, K.-Y. Chen and Y.-M. Tzou, \u201cPromotion of the catalytic polymerization of hydroquinone towards humic-like substances by graphitic carbon nitride\u201d, Journal of Environmental Chemical Engineering, 11(5), 111026 (2023).<br \/>\n654. T. T. Wang, S. C. Lim, C. L. Chiang, Y. J. Shen, P. Raghunath, J. R. Li, Y. G. Lin and M. C. Lin, \u201cPhotocatalytic Activity of B-Doped Nano Graphene Oxide over Hydrogenated NiO-Loaded TiO2 Nanotubes\u201d, Materials Today Sustainability, 24, 100497 (2023).<br \/>\n655. A. Seetharaman, S. Narra, P. Rajamanickam, R. Putikam, M.-C. Lin and Eric W.-G. Diau, \u201cDiffusion of Bulky Organic Cations in the 3D\/2D Heterostructures to Form Interfacial Quasi-2D (N2) Phase for Tin Perovskite Solar Cells\u2020\u201d, Journal of Materials Chemistry A, 11, 21089-21098 (2023)<br \/>\n656. J.-D. Lian, H.-Y. Hu, Y.-H. Lin, P. Raghunath, M.-C. Lin and W.-S. Chung, \u201cSynthesis of Upper-Rim Sulfanylpropyl- and p-Methoxyphenylazo-Substituted Calix[4]arenes as Chromogenic Sensors for Hg2+ and Ag+ Ions\u201d, The Journal of Organic Chemistry, 88(20), 14292\u201314302 (2003)<br \/>\n657. M. Shellaiah; W.-L. Lin; P. Raghunath; K. W. Sun and M. C. Lin, \u201cInvestigation on broadband emission of two-dimensional melamine lead iodide perovskite (2D-C3H8N6PbI4): An experimental and theoretical approach\u201d, Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 303, 123186 (2003).<br \/>\n658. S. Muthusamy, P. Sabhapathy, P. Raghunath, A. Sabbah, Y.-C. Chang, V. Krishnamoorthy, T.-T. Ho, J.-W. Chiou, M.-C. Lin, L.-C. Chen and K.-H. Chen \u201cMimicking Metalloenzyme Microenvironments in the Transition Metal-Single Atom Catalysts for Electrochemical Hydrogen Peroxide Synthesis in an Acidic Medium\u201d, Small Methods, 7, 2300234 (2023)<br \/>\n659. M. M. M. Ahmed, Y.-T. Liu, H. M. Nail, S. Venkatesan, D.-L. M. Tzou, S.-H. Jien, M. C. Wu, M.-C.Lin, H.-M. D. Wang, J.-Y. Chen and Yu.-min Tzou, \u201cSynergistic catalysis of graphitic carbon nitride and dichromate for augmented oxidative polymerization of hydroquinone leading to enhanced humic-like substance formation\u201d, Journal of the Taiwan Institute of Chemical Engineers, 153, 105235 (2023)<br \/>\n660. V. D. Dang, R. Putikam, M.-C. Lin and K.-H. Wei, \u201cMoS2 nanoflowers grown on plasma-induced WO3-anchored graphene for efficient and stable H2 production through seawater electrolysis\u201d, Small, 2305220 (2023).<br \/>\n661. R. Lavanya, S. Poovarasan, V. Srinivasadesikan, M. C. Lin and V. Padmini, \u201cSelective fluorescence turn-off detection of lysine by a curcumin derivative with real sample analysis\u201d, Journal of Photochemistry and Photobiology A-Chemistry, 444, 115008 (2023)<br \/>\n662. S. Vijayakumar, L. Raja, S. Venkatesan, M. C. Lin and V. Padmini, \u201cA highly Selective Schiff Base Based Chemodosimeter for the Detection of Perfluorooctanoic Acid by Optical Biosensor\u201d, J. Fluorescence, 34, 787-794 (2024)<br \/>\n663. M. Shellaiah, H.-C. Chen, K. Awasthi, B. Aazaad, K.-W. Sun, N. Ohta and M.-C. Lin, \u201cAn AIE active anthracene-based Schiff base probe for \u201cturn-on\u201d detection of Cu2+ ions: Demonstrations with nanostructural investigations, DFT, cellular imaging, and real water analysis\u201d, Journal of Molecular Structure, 1301, 137347 (2024)<br \/>\n664. M. K. Hussien, A. Sabbah, M. Qorbani, R. Putikam, S. Kholimatussadiah, D.-L. M. Tzou, M. H. Elsayed, Y.-J. Lu, Y.-Y. Wang, X.-H. Lee, T.-Y. Lin, N. Q. Thang, H.-L. Wu, S.-C. Haw, K. C.-W. Wu, M.-C. Lin, K.-H. Chen and L.C. Chen, \u201cConstructing B-N-P Bonds in Ultrathin Holey g-C3N4 for Regulating the Local Chemical Environment in Photocatalytic CO2 Reduction to CO\u201d, Small, 20, 2400724 (2024)<br \/>\n665. T. T. Mamo, M. Qorbani, A. G. Hailemariam, R. Putikam, C.-M. Chu, T.-R. Ko, A. Sabbah, C.-Y. Huang, S. Kholimatussadiah, T. Billo, M. K. Hussien, S.-Y. Chang, M.-C. Lin, W.-Y. Woon, H.-L. Wu, K.-T. Wong, L.-C. Chen, K.-H. Chen, \u201cEnhanced CO2 photoreduction to CH4 via *COOH and *CHO intermediates stabilization by synergistic effect of implanted P and S vacancy in thin-film SnS2\u201d, Nano Energy, 128, 109863 (2024)<br \/>\n666. H. P. Trac and M. C. Lin, \u201cAb Initio Chemical Kinetics for Oxidation of CH3OH by N2O4: Elucidation of the Mechanism for Major Product Formation and its Relevancy to Tropospheric Chemistry\u201d, J. Phys. Chem. A, 128 (28), 5548-5555 (2024)<br \/>\n667. H. P. Trac and M. C. Lin, \u201cAb initio MO study on direct production of H2O, N2O and CO3 from the respective CH2OO \u201cBee-sting-like\u201d attack at H2, N2 and CO2\u201d, J. Mol. Modeling, 30, 272 (2024)<br \/>\n668. V. D. Dang, R. Putikam, M.-C. Lin and K.-H. Wei, \u201cMoS2 nanoflowers grown on plasma-induced WO3-anchored graphene for efficient and stable H2 production through seawater electrolysis\u201d, Small 20(2), 2470018 (2024)<br \/>\n669. R. Lavanya, B. Sangeethapriya, V. Srinivasadesikan, M.-C. Lin, V. Padmini, \u201cSensitive and selective detection of glycine betaine using curcumin-based fluorescent molecule with real sample analysis\u201d, J. Iranian Chem. Soc., 21, 2325-2333 (2024).<br \/>\n670. V. Krishnamoorthy, P. Sabhapathy, P. Raghunath, C. Y. Huang, A. Sabbah, M. K. Hussien, Z. Syum, S. Muthusamy, M. C. Lin, H. L. Wu, R. S. Chen, K. H. Chen, &amp; L. C. Chen, \u201cSynergistic Electronic Interaction of Nitrogen Coordinated Fe-Sn Double-Atom Sites: An Efficient Electrocatalyst for Oxygen Reduction Reaction\u201d Small Methods, 8(10), 2301674 (2024)<br \/>\n671. N. Bhuvanendran, V. Srinivasadesikan, V. Dharmaraj, W.-G. Jung, W.-J. Moon, C. W. Park, M.-C. Lin and S. Y. Lee, \u201cUltra-thin dealloyed PdCu bimetallene with lattice strain transformation for efficient bifunctional electrocatalysis\u201d, International Journal of Hydrogen Energy, 98, 514-526 (2025)<br \/>\n672. M. M. M. Ahmed, C.-H. Liao, S. Venkatesan, Y.-T. Liu, Y.-M. Tzou, S.-H. Jien, M.-C. Lin, Y.-C. Hsieh and A. I. Osman, \u201cSulfur-functionalized sawdust biochar for enhanced cadmium adsorption and environmental remediation: A multidisciplinary approach and density functional theory insights\u201d, Journal of Environmental Management, 373, 123586 (2025)<br \/>\n673. N. Q. Thang, A. Sabbah, R. Putikam, C.-Y. Huang, T.-Y. Lin, M. K. Hussien, H.-L. Wu, M.-C. Lin, C.-H. Lee, K.-H. Chen, L.-C. Chen, \u201cRegulating COOH Intermediate via Rationally Constructed Surface-Active Sites of Bi2WO6 for Solar-Driven CO2-to-CO Production\u201d, Adv. Funct. Mater., 2423751 (2025)<br \/>\n674. N. L. Torad, T.-L. Yang, M. A. Darwish, P. Raghunath, A. Qurashi, L. R. Ahmed, M.-C. Lin, Y. Yamauchi, B. Yuliarto, W. Kaveevivitchai, M. A. Haija and A. F. M. EL-Mahdy, \u201cStructure-Induced Selectivity of Hydroxylated Covalent Organic Framework Nanofibers for Advanced Sensing Applications: An Experimental and Density Functional Theory Study\u201d, ACS Appl. Mater. Interfaces, 17(18), 27188-27203 (2025)<br \/>\n675. A. G. Hailemariam, M. Qorbani, T. T. Mamo, R. Putikam, C.-Y. Huang, K. S. Bayikadi, H.-L. Wu*, M.-C. Lin, L.-C. Chen and K.-H. Chen, \u201cImproved electrochemical kinetics and rate performance of lithium-ion batteries by Li2FeS2\u2212xFx cathode materials\u201d, Communications Materials, 6, 143 (2025)<br \/>\n676. H.\u2010P. Trac, P. Raghunath and M.\u2010C. Lin, \u201cAb initio prediction for product stereo-specificity in the CH3CHI + O2 reaction: formation of syn- vs anti-CH3CHOO\u201d, Journal of Molecular Modeling, 31, 205 (2025)<br \/>\n677. H. Omr, Y.-T. Wu, Y.-H. Siao, R. Putikam, C.-K. Chang, Z.-W. You, M.C. Lin, M. Horn and Hyeonseok Lee, \u201cZnIn2S4\/ZnO Film for High-Efficiency CO2 Conversion to Fuel: Photocatalysis by Atomically Disorder-Engineered Heterointerface\u201d, ACS Applied Materials &amp; Interfaces, 17(33), 47625-47636 (2025)<br \/>\n678. C.-Y. Yao, Y.-Y. Chang, R. Arumugaperumal, T.-Y. Chao, P. Raghunath, M.-C. Lin and W.-S. Chung, \u201cStimuli-Responsive Supramolecular Polymers of Mono- and Bis-triazolylphenylazoaniline-Functionalized Copillar[5]Arenes:With Distinctive Binding Modes\u201d, Chemistry &#8211; An Asian Journal, 0, e00601 (2025)<\/p>\n<\/div><\/section><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n","protected":false},"excerpt":{"rendered":"<p>Ming Chang Lin \u6797\u660e\u748b<br \/>\nChemical Kinetics, Combustion Chemistry, Material Chemistry, Computational Chemistry<br \/>\nTel | 03-5712121 #56567<br \/>\nEmail | chemmcl@emory.edu<br \/>\nOffice | SCBII R522-1<\/p>\n","protected":false},"author":18,"featured_media":16599,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_acf_changed":false,"footnotes":""},"tags":[],"portfolio_entries":[198,196],"class_list":["post-16595","portfolio","type-portfolio","status-publish","has-post-thumbnail","hentry","portfolio_entries-01-en","portfolio_entries--en"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.2 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Chair Professor M. C. 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