{"id":16604,"date":"2024-12-04T15:05:55","date_gmt":"2024-12-04T07:05:55","guid":{"rendered":"https:\/\/dac.nycu.edu.tw\/?post_type=portfolio&#038;p=16604"},"modified":"2026-08-05T13:52:23","modified_gmt":"2026-08-05T05:52:23","slug":"chair-professor-yuan-pern-lee","status":"publish","type":"portfolio","link":"https:\/\/dac.nycu.edu.tw\/en\/portfolio-item\/chair-professor-yuan-pern-lee\/","title":{"rendered":"Chair Professor Yuan-Pern Lee"},"content":{"rendered":"\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-20m1hpd-3d26feaa37b54884ee2cc663490eae0b\">\n.avia-section.av-20m1hpd-3d26feaa37b54884ee2cc663490eae0b{\nmargin-top:-50px;\nmargin-bottom:0px;\n}\n.avia-section.av-20m1hpd-3d26feaa37b54884ee2cc663490eae0b .av-parallax .av-parallax-inner{\nbackground-repeat:no-repeat;\nbackground-image:url(https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/12\/\u5be6\u9a57\u5ba4\u88c1\u5207.jpg);\nbackground-position:50% 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av-content-full alpha units'><div class='post-entry post-entry-type-page post-entry-16604'><div class='entry-content-wrapper clearfix'>\n<div  class='flex_column av-1xws4bl-293705cfc739647dc5148d18a4c85d80 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-1wzy2b5-8b2ba062d46b69a86555154d555ceac2\">\n#top .av-special-heading.av-1wzy2b5-8b2ba062d46b69a86555154d555ceac2{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-1wzy2b5-8b2ba062d46b69a86555154d555ceac2 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-1wzy2b5-8b2ba062d46b69a86555154d555ceac2 .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-1wzy2b5-8b2ba062d46b69a86555154d555ceac2 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-1wzy2b5-8b2ba062d46b69a86555154d555ceac2 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-6n7vn5-6c096896582ba8dfa05dda504e666441\">\n#top .av-special-heading.av-6n7vn5-6c096896582ba8dfa05dda504e666441{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-6n7vn5-6c096896582ba8dfa05dda504e666441 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-6n7vn5-6c096896582ba8dfa05dda504e666441 .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-6n7vn5-6c096896582ba8dfa05dda504e666441 .av-subheading{\nfont-size:15px;\n}\n\n@media only screen and (min-width: 990px){ \n#top #wrap_all .av-special-heading.av-6n7vn5-6c096896582ba8dfa05dda504e666441 .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-6n7vn5-6c096896582ba8dfa05dda504e666441 .av-special-heading-tag{\nfont-size:40px;\n}\n}\n<\/style>\n<div  class='av-special-heading av-6n7vn5-6c096896582ba8dfa05dda504e666441 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 Yuan-Pern Lee<\/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 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av-equal-height-column av-align-middle  '     ><p>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-1jlqo1d-9ea7b98064f046a46c65b55bac1c72fc\">\n#top .av-special-heading.av-1jlqo1d-9ea7b98064f046a46c65b55bac1c72fc{\nmargin:0 0 0 0;\npadding-bottom:10px;\ncolor:#005daf;\n}\nbody .av-special-heading.av-1jlqo1d-9ea7b98064f046a46c65b55bac1c72fc .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-1jlqo1d-9ea7b98064f046a46c65b55bac1c72fc .special-heading-inner-border{\nborder-color:#005daf;\n}\n.av-special-heading.av-1jlqo1d-9ea7b98064f046a46c65b55bac1c72fc .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-1jlqo1d-9ea7b98064f046a46c65b55bac1c72fc{\nmargin:30px 0 0 0;\n}\n}\n\n@media only screen and (max-width: 479px){ \n#top .av-special-heading.av-1jlqo1d-9ea7b98064f046a46c65b55bac1c72fc{\nmargin:30px 0 0 0;\n}\n}\n<\/style>\n<div  class='av-special-heading av-1jlqo1d-9ea7b98064f046a46c65b55bac1c72fc 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\"  >\u674e\u9060\u9d6c Yuan-Pern Lee<\/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-1igaom9-1ebd6c2b38382c2d41b561aece9f511f\">\n#top .av-special-heading.av-1igaom9-1ebd6c2b38382c2d41b561aece9f511f{\nmargin:0 0 0 0;\npadding-bottom:20px;\ncolor:#005daf;\n}\nbody .av-special-heading.av-1igaom9-1ebd6c2b38382c2d41b561aece9f511f .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-1igaom9-1ebd6c2b38382c2d41b561aece9f511f .special-heading-inner-border{\nborder-color:#005daf;\n}\n.av-special-heading.av-1igaom9-1ebd6c2b38382c2d41b561aece9f511f .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-1igaom9-1ebd6c2b38382c2d41b561aece9f511f{\nmargin:0 0 0 0;\n}\n}\n\n@media only screen and (max-width: 479px){ \n#top .av-special-heading.av-1igaom9-1ebd6c2b38382c2d41b561aece9f511f{\nmargin:0 0 0 0;\n}\n}\n<\/style>\n<div  class='av-special-heading av-1igaom9-1ebd6c2b38382c2d41b561aece9f511f 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-1fi9629-ee4212960ce388e303f614ac59aabd0d '   itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div class='avia_textblock link_text'  itemprop=\"text\" ><p>Tel | 03-5131459<\/p>\n<p>Fax| 03-5713491<\/p>\n<p>Office | R312, Science Building<\/p>\n<p>Email | yplee@nycu.edu.tw<\/p>\n<p>Lab Tel | 03-5712121#56579<\/p>\n<\/div><\/section><br \/>\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-1en6ca9-b3367656a2985937ac74f6a5d7000e4b\">\n#top .hr.hr-invisible.av-1en6ca9-b3367656a2985937ac74f6a5d7000e4b{\nheight:15px;\n}\n<\/style>\n<div  class='hr av-1en6ca9-b3367656a2985937ac74f6a5d7000e4b 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-1dl7bbl-5dd4d5a5b7fe9a4102c2f4a0f7eae4c4 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-1bxlly9-178b68c2cfe1e29d81ded69f445b2023\">\n#top #wrap_all .avia-button.av-1bxlly9-178b68c2cfe1e29d81ded69f445b2023{\nmargin-bottom:5px;\nmargin-right:5px;\n}\n#top #wrap_all .avia-button.av-1bxlly9-178b68c2cfe1e29d81ded69f445b2023:hover{\nopacity:1;\ntransition:all 0.4s ease-in-out;\n}\n<\/style>\n<a href='https:\/\/yplee.web.nycu.edu.tw\/'  class='avia-button av-1bxlly9-178b68c2cfe1e29d81ded69f445b2023 avia-icon_select-yes-right-icon avia-size-medium av-icon-on-hover avia-color-theme-color'  target=\"_blank\"  rel=\"noopener noreferrer\"  aria-label=\" YPlaboratory \/ \u674e\u9060\u9d6c\u8001\u5e2b\u5be6\u9a57\u5ba4\u7db2\u7ad9\"><span class='avia_iconbox_title' > YPlaboratory \/ \u674e\u9060\u9d6c\u8001\u5e2b\u5be6\u9a57\u5ba4\u7db2\u7ad9<\/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-1aadeox-494aa534fe013448155f18a18fb56e38\">\n#top .hr.hr-invisible.av-1aadeox-494aa534fe013448155f18a18fb56e38{\nheight:30px;\n}\n<\/style>\n<div  class='hr av-1aadeox-494aa534fe013448155f18a18fb56e38 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-17tx1ch-c126b84ceb2ee9ea93472615aa621db5 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-17tx1ch-c126b84ceb2ee9ea93472615aa621db5\">\n.flex_column.av-17tx1ch-c126b84ceb2ee9ea93472615aa621db5{\nwidth:100%;\nmargin-left:0;\nborder-radius:0 50px 0 0;\npadding:25px 30px 15px 30px;\nbackground-color:#ffeca0;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-17tx1ch-c126b84ceb2ee9ea93472615aa621db5 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-17tx1ch-c126b84ceb2ee9ea93472615aa621db5 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-16caybl-9e4b8003021a3cea9a9d2ef112fc74ca\">\n#top .av-special-heading.av-16caybl-9e4b8003021a3cea9a9d2ef112fc74ca{\npadding-bottom:10px;\n}\nbody .av-special-heading.av-16caybl-9e4b8003021a3cea9a9d2ef112fc74ca .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-16caybl-9e4b8003021a3cea9a9d2ef112fc74ca .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-16caybl-9e4b8003021a3cea9a9d2ef112fc74ca av-special-heading-h3 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-14bi2gx-15431cb6a3fcf8b38884b30333bd6b94 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-14bi2gx-15431cb6a3fcf8b38884b30333bd6b94\">\n#top .flex_column_table.av-equal-height-column-flextable.av-14bi2gx-15431cb6a3fcf8b38884b30333bd6b94{\nmargin-top:0px;\nmargin-bottom:0px;\n}\n.flex_column.av-14bi2gx-15431cb6a3fcf8b38884b30333bd6b94{\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-14bi2gx-15431cb6a3fcf8b38884b30333bd6b94 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-14bi2gx-15431cb6a3fcf8b38884b30333bd6b94 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-137cdpt-92d82541f723556c731d83f3447b0230 '   itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div class='avia_textblock'  itemprop=\"text\" ><p>1979 Ph.D. University of California, Berkeley<br \/>\n1973 B.S. National Taiwan University<\/p>\n<\/div><\/section><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div class='flex_column_table av-10uibq9-586c79753a38df06df09d1865806a1d2 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-10uibq9-586c79753a38df06df09d1865806a1d2\">\n.flex_column.av-10uibq9-586c79753a38df06df09d1865806a1d2{\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-10uibq9-586c79753a38df06df09d1865806a1d2 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-10uibq9-586c79753a38df06df09d1865806a1d2 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-zyvs2p-7327fc201cf8c3fc66f202bd7fca7270\">\n#top .av-special-heading.av-zyvs2p-7327fc201cf8c3fc66f202bd7fca7270{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-zyvs2p-7327fc201cf8c3fc66f202bd7fca7270 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-zyvs2p-7327fc201cf8c3fc66f202bd7fca7270 .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-zyvs2p-7327fc201cf8c3fc66f202bd7fca7270 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-zyvs2p-7327fc201cf8c3fc66f202bd7fca7270 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-3g459d-a3fea903459c9cd7a6694463baefbea0 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-3g459d-a3fea903459c9cd7a6694463baefbea0\">\n#top .flex_column_table.av-equal-height-column-flextable.av-3g459d-a3fea903459c9cd7a6694463baefbea0{\nmargin-top:0px;\nmargin-bottom:0px;\n}\n.flex_column.av-3g459d-a3fea903459c9cd7a6694463baefbea0{\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-3g459d-a3fea903459c9cd7a6694463baefbea0 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-3g459d-a3fea903459c9cd7a6694463baefbea0 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'     ><section  class='av_textblock_section av-mh3dqwni-f078534db62bd1408b8032a9e12356a8 '   itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div class='avia_textblock'  itemprop=\"text\" ><p>1979\/9 ~ 1981\/8 Research Associate, Aeronomy Laboratory, National Oceanic and Atmospheric Administration-Environmental Research Laboratories<br \/>\n1981\/8 ~ 1985\/7 Associate Professor, Department of Chemistry, National Tsing Hua University<br \/>\n1985\/8 ~ 2004\/7 Professor, Department of Chemistry, National Tsing Hua University<br \/>\n2004\/7 ~ present Chair Professor, Dept. Applied Chemistry, National Chiao Tung University (National Yang Ming Chiao Yung University from 2021\/2)<\/p>\n<\/div><\/section><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div class='flex_column_table av-p6jl1d-ed601da32b001e1b6584741d9b347bac sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-p6jl1d-ed601da32b001e1b6584741d9b347bac\">\n.flex_column.av-p6jl1d-ed601da32b001e1b6584741d9b347bac{\nwidth:100%;\nmargin-left:0;\nborder-radius:0 50px 0 0;\npadding:25px 30px 15px 30px;\nbackground-color:#ffeca0;\n}\n#top .flex_column_table.av-equal-height-column-flextable.av-p6jl1d-ed601da32b001e1b6584741d9b347bac .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-p6jl1d-ed601da32b001e1b6584741d9b347bac 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-no0pgh-8c889431f0b14e7d6a1f24e33eee44c2\">\n#top .av-special-heading.av-no0pgh-8c889431f0b14e7d6a1f24e33eee44c2{\npadding-bottom:10px;\n}\nbody .av-special-heading.av-no0pgh-8c889431f0b14e7d6a1f24e33eee44c2 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-no0pgh-8c889431f0b14e7d6a1f24e33eee44c2 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-no0pgh-8c889431f0b14e7d6a1f24e33eee44c2 av-special-heading-h3 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 -->\n<div class='flex_column_table av-mncmb5-d9813306f36a000c3c6231333630aaa3 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-mncmb5-d9813306f36a000c3c6231333630aaa3\">\n#top .flex_column_table.av-equal-height-column-flextable.av-mncmb5-d9813306f36a000c3c6231333630aaa3{\nmargin-top:0px;\nmargin-bottom:0px;\n}\n.flex_column.av-mncmb5-d9813306f36a000c3c6231333630aaa3{\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-mncmb5-d9813306f36a000c3c6231333630aaa3 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-mncmb5-d9813306f36a000c3c6231333630aaa3 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-k9wpa9-c911d4623c9f9324365682b5159fdbbc '   itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div class='avia_textblock'  itemprop=\"text\" ><ul>\n<li>2019 \u7e3d\u7d71\u79d1\u5b78\u734e<\/li>\n<li>2018 \u4e9e\u6d32\u53ca\u5927\u6d0b\u6d32\u5149\u5316\u5b78\u6703\u589e\u539f\u5b8f\u8b1b\u5ea7<\/li>\n<li>2018 \u9593\u8cea\u9694\u96e2Pimentel\u734e<\/li>\n<li>2017 \u5fb7\u570b\u5b8f\u535a\u57fa\u91d1\u6703\u5b8f\u535a\u7814\u7a76\u734e<\/li>\n<li>2016 \u65e5\u672c\u5149\u5316\u5b78\u67032016\u5e74\u672c\u591a-\u85e4\u5d8b\u9080\u8acb\u8b1b\u5e2d<\/li>\n<li>2016 \u8ca1\u5718\u6cd5\u4eba\u5f35\u662d\u9f0e\u7d00\u5ff5\u57fa\u91d1\u6703\u7b2c18\u5c46\u5f35\u662d\u9f0e\u7d00\u5ff5\u8b1b\u5ea7<\/li>\n<li>2011 \u4e16\u754c\u79d1\u5b78\u9662(TWAS)\u9662\u58eb<\/li>\n<li>2011 \u4e2d\u83ef\u6c11\u570b\u6590\u9676\u6590\u69ae\u8b7d\u5b78\u6703\u7b2c16\u5c46\u5091\u51fa\u6210\u5c31\u734e<\/li>\n<li>2010 \u4e9e\u6d32\u53ca\u5927\u6d0b\u6d32\u5149\u5316\u5b78\u6703\u734e<\/li>\n<li>2008 \u4e2d\u592e\u7814\u7a76\u9662\u7b2c\u4e8c\u5341\u4e03\u5c46\u9662\u58eb<\/li>\n<li>2002 \u570b\u79d1\u6703\u5091\u51fa\u7279\u7d04\u7814\u7a76\u4eba\u54e1\u734e<\/li>\n<li>1997-2000\u30012000-2003 \u6559\u80b2\u90e8\u7b2c\u4e00\u5c46\u53ca\u56db\u5c46\u570b\u5bb6\u8b1b\u5ea7<\/li>\n<li>1986\u30012000 \u6e05\u83ef\u5927\u5b78\u5091\u51fa\u512a\u826f\u6559\u5e2b<\/li>\n<li>1999 \u7f8e\u570b\u7269\u7406\u5b78\u6703\u6703\u58eb<\/li>\n<li>1996 \u4e2d\u570b\u5316\u5b78\u6703\u5316\u5b78\u5b78\u8853\u734e\u7ae0<\/li>\n<li>1995-2000\u30012003-2008\u30012008-2013 \u5091\u51fa\u4eba\u624d\u8b1b\u5ea7<\/li>\n<li>1995-1998\u30011998-2001 \u570b\u79d1\u6703\u7279\u7d04\u7814\u7a76\u4eba\u54e1\u734e\u52a9<\/li>\n<li>1989-1995 \u570b\u79d1\u6703\u5091\u51fa\u7814\u7a76\u734e (\u4e09\u6b21\uff0c\u6bcf\u6b21\u5169\u5e74)<\/li>\n<li>1993 \u7b2c\u5341\u516d\u5c46\u5433\u4e09\u9023\u734e<\/li>\n<li>1990 \u6559\u80b2\u90e8\u7406\u79d1\u5b78\u8853\u734e<\/li>\n<li>1988 \u4e2d\u5c71\u5b78\u8853\u8457\u4f5c\u734e<\/li>\n<\/ul>\n<\/div><\/section><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div class='flex_column_table av-ist9k1-e5d3a5e495fbb5a30e807311887f7579 sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-ist9k1-e5d3a5e495fbb5a30e807311887f7579\">\n.flex_column.av-ist9k1-e5d3a5e495fbb5a30e807311887f7579{\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-ist9k1-e5d3a5e495fbb5a30e807311887f7579 .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-ist9k1-e5d3a5e495fbb5a30e807311887f7579 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-gy97u9-68873e5b57503985940d32ece92abebb\">\n#top .av-special-heading.av-gy97u9-68873e5b57503985940d32ece92abebb{\npadding-bottom:10px;\ncolor:#ffffff;\n}\nbody .av-special-heading.av-gy97u9-68873e5b57503985940d32ece92abebb .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-gy97u9-68873e5b57503985940d32ece92abebb .special-heading-inner-border{\nborder-color:#ffffff;\n}\n.av-special-heading.av-gy97u9-68873e5b57503985940d32ece92abebb .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-gy97u9-68873e5b57503985940d32ece92abebb 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-fyg7ip-e3e2ae3c6cf236baa8d9a855835f7edf sc-av_one_full av-equal-height-column-flextable'>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-fyg7ip-e3e2ae3c6cf236baa8d9a855835f7edf\">\n#top .flex_column_table.av-equal-height-column-flextable.av-fyg7ip-e3e2ae3c6cf236baa8d9a855835f7edf{\nmargin-top:0px;\nmargin-bottom:0px;\n}\n.flex_column.av-fyg7ip-e3e2ae3c6cf236baa8d9a855835f7edf{\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-fyg7ip-e3e2ae3c6cf236baa8d9a855835f7edf .av-flex-placeholder{\nwidth:0%;\n}\n<\/style>\n<div  class='flex_column av-fyg7ip-e3e2ae3c6cf236baa8d9a855835f7edf av_one_full  avia-builder-el-30  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'     ><style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-e3r8c1-ed6d7c960637236cd85b66ac10e3c2eb\">\n#top .togglecontainer.av-e3r8c1-ed6d7c960637236cd85b66ac10e3c2eb p.toggler{\ncolor:#555555;\nbackground-color:#f8f8f8;\nborder-color:#ffffff;\n}\n#top .togglecontainer.av-e3r8c1-ed6d7c960637236cd85b66ac10e3c2eb p.toggler:not(.activeTitle):hover{\nbackground-color:#ffeca0;\n}\n#top .togglecontainer.av-e3r8c1-ed6d7c960637236cd85b66ac10e3c2eb p.toggler .toggle_icon{\ncolor:#005daf;\nborder-color:#005daf;\n}\n#top .togglecontainer.av-e3r8c1-ed6d7c960637236cd85b66ac10e3c2eb p.toggler .toggle_icon > span{\ncolor:#005daf;\nborder-color:#005daf;\n}\n#top .togglecontainer.av-e3r8c1-ed6d7c960637236cd85b66ac10e3c2eb .toggle_wrap .toggle_content{\ncolor:#555555;\nbackground-color:#f8f8f8;\nborder-color:#ffffff;\n}\n<\/style>\n<div  class='togglecontainer av-e3r8c1-ed6d7c960637236cd85b66ac10e3c2eb av-minimal-toggle  avia-builder-el-31  avia-builder-el-no-sibling ' >\n<section class='av_toggle_section av-7sn7wx-7bd63a6ca6272cce21c91894a48add2e'  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 av-inherit-border-color'  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-1' data-slide-speed=\"200\" data-title=\"2021-2025\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2021-2025\" data-aria_expanded=\"Click to collapse: 2021-2025\">2021-2025<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 av-inherit-border-color'  itemprop=\"text\" ><ol>\n<li>&#8220;Hydrogen abstraction of acetic acid by hydrogen atom to form carboxymethyl radical \u2022CH<sub>2<\/sub>C(O)OH in solid <em>para<\/em>-hydrogen and its implication in astrochemistry, P. R. Joshi, K. C.-Y. How, and <strong>Y.-P. Lee<\/strong>*, ACS Earth Space Chem. <strong>5<\/strong>, 106 (2021).<\/li>\n<li>&#8220;Infrared characterization of formation and resonance stabilization of the Criegee intermediate methyl vinyl ketone oxide&#8221;, C.-A. Chung and <strong>Y.-P. Lee<\/strong>*, Commun. Chem. <strong>4<\/strong>, 8 (2021).<\/li>\n<li>&#8220;Formation and infrared spectrum of the open-form 2-bromoethyl radical (2-C<sub>2<\/sub>H<sub>4<\/sub>Br\u2022) from ultraviolet irradiation of a C<sub>2<\/sub>H<sub>4<\/sub>\/Br<sub>2<\/sub>\/<em>p<\/em>-H<sub>2<\/sub> matrix&#8221;, Y.-H. Chen, Y.-K. Cheng, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>125<\/strong>, 2139 (2021). <strong>(Special issue: Cheuk-Yiu Ng Festschrift)<\/strong><\/li>\n<li>&#8220;Infrared characterization of the products and the rate coefficient of the reaction between Criegee intermediate CH<sub>2<\/sub>OO and HCl&#8221;, W.-C. Liang, P.-L. Luo*, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>23<\/strong>, 11082 (2021).<\/li>\n<li>&#8220;Vacuum ultraviolet photoionization induced proton migration and formation of a new C\u2013N bond in pyridine clusters revealed by infrared spectroscopy and mass spectrometry&#8221;, J.-Y. Feng, <strong>Y.-P. Lee<\/strong>, H. A. Witek, and T. Ebata*, J. Phys. Chem. Lett. <strong>12<\/strong>, 4936 (2021).<\/li>\n<li>&#8220;Non-energetic, low-temperature formation of C\u03b1-Glycyl radical, a potential interstellar precursor of natural amino acids&#8221;, A. Schneiker, S. G\u00f3bi, P. R. Joshi, G. Bazs\u00f3, <strong>Y.-P. Lee<\/strong>, and G. Tarczay*, J. Phys. Chem. Lett. <strong>12<\/strong>, 6744 (2021).<\/li>\n<li>&#8220;Structures of pyridine\u2013water clusters studied with infrared\u2013vacuum ultraviolet spectroscopy, J.-Y. Feng, <strong>Y.-P. Lee<\/strong>, H. Witek, P.-J. Hsu, J.-L. Kuo*, T. Ebata*, J. Phys. Chem. A <strong>125<\/strong>, 7489 (2021).<strong> (Special issue: 125 Years of The Journal of Physical Chemistry)<\/strong><\/li>\n<li>&#8220;Dynamics of reaction CH<sub>3<\/sub>CHI + O<sub>2<\/sub> investigated via infrared emission of products CO, CO<sub>2<\/sub>, and OH&#8221;, Y.-T. Ji and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>125<\/strong>, 8373 (2021). <strong>(Special issue: Daniel Neumark Festschrift) <\/strong><strong>(Selected as Collection: Spectroscopy, Structure and Reactivity of Stabilized Criegee Intermediates)<\/strong><\/li>\n<li>&#8220;Formation reaction mechanism and infrared spectra of <em>anti<\/em>&#8211;<em>trans<\/em>-methacrolein oxide and its associated precursor and adduct radicals&#8221;, J.-R. Cai, J.-H. Su, and <strong>Y.-P. Lee<\/strong>*, Commun. Chem. <strong>5<\/strong>, 26 (2022).<\/li>\n<li>&#8220;Infrared Spectra of 1-quinolinium (C<sub>9<\/sub>H<sub>7<\/sub>NH<sup>+<\/sup>) Cation and Quinolinyl Radicals (C<sub>9<\/sub>H<sub>7<\/sub>NH and 3-, 4-, 7-, 8-HC<sub>9<\/sub>H<sub>7<\/sub>N) Isolated in Solid <em>para<\/em>-Hydrogen&#8221;, C.-Y. Tseng, Y.-J. Wu, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>126<\/strong>, 2361 (2022). <strong>(Special issue: 10 Years of the ACS PHYS Astrochemistry Subdivision) <\/strong><\/li>\n<li>&#8220;A chemical link between methylamine and methylene imine and implications for interstellar glycine formation&#8221;, P. R. Joshi and <strong>Y.-P. Lee<\/strong>*, Commun. Chem. <strong>5<\/strong>, 62 (2022).<\/li>\n<li>&#8220;Hydrogen-atom-assisted uphill isomerization of N-methylformamide in darkness&#8221;, S.-Y. Tsai, K. A. Haupa*, and <strong>Y.-P. Lee<\/strong>*, J. Am. Chem. Soc. <strong>144<\/strong>, 12339 (2022).<\/li>\n<li>&#8220;Hydrogen-atom tunneling reactions in solid <em>para<\/em>-hydrogen and their applications to astrochemistry&#8221;, K. A. Haupa*, P. R. Joshi*, and <strong>Y.-P. Lee<\/strong>*, J. Chin. Chem. Soc. <strong>69<\/strong>, 1159 (2022). <strong>(Highly Cited Paper Award)<\/strong> <strong>(Special Issue: Celebrating the 90th Anniversary of Chemical Society Located in Taipei)<\/strong><\/li>\n<li>&#8220;Mechanism and kinetics of the reaction of Criegee intermediate CH<sub>2<\/sub>OO with acetic acid studied with a step-scan Fourier-transform IR spectrometer&#8221;, B. Behera, K. Takahashi*, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>24<\/strong>, 18568 (2022). <strong>(2022 PCCP HOT Articles)<\/strong><\/li>\n<li>&#8220;Infrared and laser-induced fluorescence spectra of sumanene isolated in solid <em>para<\/em>-hydrogen&#8221;, I. Weber*, M. Tsuge, P. Sundararajan, M. Baba, H. Sakurai, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>126<\/strong>, 5283 (2022).<\/li>\n<li>&#8220;Infrared characterization of the products and rate coefficient of the reaction between Criegee intermediate CH<sub>2<\/sub>OO and HNO<sub>3<\/sub>&#8220;, C.-A. Chung, C.-W. Hsu, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>126<\/strong>, 5738 (2022). <strong>(Selected as Collection: Spectroscopy, Structure and Reactivity of Stabilized Criegee Intermediates)<\/strong><\/li>\n<li>&#8220;Fluorescence excitation and dispersed fluorescence spectra of the 1-hydronaphthyl radical (1-C<sub>10<\/sub>H<sub>9<\/sub>) in solid <em>para<\/em>-hydrogen&#8221;, I. Weber,* C.-W. Wang, S.-C. Huang, C.-Y. Zhu, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>126<\/strong>, 8423 (2022). <strong>(Special Issue: Paul L. Houston Festschrift)<\/strong><\/li>\n<li>&#8220;Spectral evidence of bevel-gear-type rotation of benzene around Br in solid <em>p<\/em>-H<sub>2<\/sub>: Infrared spectrum of the C<sub>6<\/sub>H<sub>6<\/sub>Br radical&#8221;, H.-R. Tsai, P. R. Joshi, H. A. Witek*, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. Lett. <strong>14<\/strong>, 460 (2023).<\/li>\n<li>&#8220;A plausible model for the galactic extended red emission: Graphene exposed to far-ultraviolet light&#8221;, S.-L. Chou, W.-B. Shih, M.-Z. Yang, T.-P. Huang, S.-Y. Lin, M.-Y. Lin, W.-J. Huang, C. M. Chu, W.-Y. Woon, Y.-Y. Lee, <strong>Y.-P. Lee<\/strong>, and Y.-J. Wu*, Astrophys. J. <strong>944<\/strong>, 18 (2023).<\/li>\n<li>&#8220;Infrared spectra of isoquinolinium (<em>iso<\/em>-C<sub>9<\/sub>H<sub>7<\/sub>NH<sup>+<\/sup>) and isoquinolinyl radicals (<em>iso<\/em>-C<sub>9<\/sub>H<sub>7<\/sub>NH and 1-, 3-, 4-, 5-, 6-, 7-, and 8-<em>iso<\/em>-HC<sub>9<\/sub>H<sub>7<\/sub>N) isolated in solid <em>para<\/em>-hydrogen&#8221;, P. R. Joshi*, M. Tsuge*, C.-Y. Tseng, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>25<\/strong>, 11934 (2023). (<strong>2023 PCCP HOT Articles, front cover)<\/strong><\/li>\n<li>&#8220;Infrared spectra of gaseous peroxychloroformyl radical ClC(O)OO: A key intermediate in the conversion of CO to CO<sub>2<\/sub> in the Venus atmosphere&#8221;, B. Behera and<strong> Y.-P. Lee<\/strong>*, J. Mol. Spectrosc. <strong>393<\/strong>, 111771 (2023).<\/li>\n<li>&#8220;Structures of (Pyrazine)<sub>2<\/sub> and (Pyrazine)(Benzene) dimers investigated with infrared\u2013vacuum ultraviolet spectroscopy and quantum-chemical calculations: Competition among \u03c0\u2013\u03c0, CH\u00b7\u00b7\u00b7\u03c0, and CH\u00b7\u00b7\u00b7N interactions&#8221;, J.-Y. Feng, <strong>Y.-P. Lee<\/strong>, P.-J. Hsu, J.-L. Kuo, and T. Ebata*, J. Phys. Chem. A <strong>127<\/strong>, 4291 (2023). <strong>(Special Issue: Hiro-o Hamaguchi Festschrift)<\/strong><\/li>\n<li>&#8220;Infrared spectra of (<em>Z<\/em>)- and (<em>E<\/em>)-\u2022CH<sub>2<\/sub>C(CH<sub>3<\/sub>)CHI radicals produced upon photodissociation of (<em>Z<\/em>)- and (<em>E<\/em>)-(CH<sub>2<\/sub>I)(CH<sub>3<\/sub>)C=CHI in solid <em>para<\/em>-hydrogen&#8221;, J.-H. Su and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>127<\/strong>, 5986 (2023). <strong>(Special Issue: Hiro-o Hamaguchi Festschrift)<\/strong><\/li>\n<li>&#8220;Infrared characterization of the products of the reaction between the Criegee intermediate CH<sub>3<\/sub>CHOO and HCl&#8221;, Z.-S. Su and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>127<\/strong>, 6902 (2023). <strong>(Special Issue: Marsha I. Lester Festschrift) <\/strong><strong>(Selected as Collection: Spectroscopy, Structure and Reactivity of Stabilized Criegee Intermediates)<\/strong><\/li>\n<li>&#8220;Detection of a C<sub>4<\/sub> Criegee intermediate: Fourier-transform microwave spectroscopy of methacrolein oxide&#8221;, Y. Endo*, C.-A. Chung, H. A. Witek, C. Cabezas, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>127<\/strong>, 8602 (2023). <strong>(Selected as Collection: Spectroscopy, Structure and Reactivity of Stabilized Criegee Intermediates)<\/strong><\/li>\n<li>&#8220;Structures and anharmonic analyses of the O\u2013H stretching vibrations of jet-cooled benzoic acid (BA), (BA)(H<sub>2<\/sub>O)<em><sub>n<\/sub><\/em>, and (BA)<sub>2<\/sub>(H<sub>2<\/sub>O)<em><sub>n<\/sub><\/em>(<em>n<\/em>\u00a0= 1, 2) clusters, and their ring-deuterated isotopologues measured with IR-VUV spectroscopy\u2500unraveling the complex anharmonic couplings in the cyclic structures&#8221;, C.-I Huang, J.-Y. Feng, <strong>Y.-P. Lee<\/strong>*, and T. Ebata, J. Phys. Chem. A <strong>127<\/strong>, 9550 (2023).<\/li>\n<li>&#8220;Detailed mechanism and kinetics of reactions of <em>anti<\/em>&#8211; and <em>syn<\/em>-CH<sub>3<\/sub>CHOO with HC(O)OH: Infrared spectra of conformers of hydroperoxyethyl formate&#8221;, B. Behera and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>26<\/strong>, 1950 (2024).<\/li>\n<li>&#8220;Laboratory and astronomical discovery of cyanothioketene, NCCHCS, in the cold starless core TMC-1&#8221;, C. Cabezas*, M. Ag\u00fandez, Y. Endo, B. Tercero, <strong>Y.-P. Lee<\/strong>, N. Marcelino, P. de Vicente, and J. Cernicharo*, A&amp;A <strong>686<\/strong>, L3 (2024).<\/li>\n<li>&#8220;Fluorescence excitation and dispersed fluorescence spectra of the first electronic excited (S<sub>1<\/sub>) state of <em>peri<\/em>-hexabenzocoronene (C<sub>42<\/sub>H<sub>18<\/sub>) isolated in solid<em> para<\/em>-hydrogen&#8221;, I. Weber* and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>128<\/strong>, 4984 (2024). <strong>(ACS Editors&#8217; Choice)<\/strong><\/li>\n<li>&#8220;Identification of HOC\u2022HC(O)H, HOCH<sub>2<\/sub>C\u2022O, and HOCH<sub>2<\/sub>CH<sub>2<\/sub>O\u2022 intermediates in the reaction of H + glycolaldehyde in solid <em>para<\/em>-hydrogen and its implication to the interstellar formation of complex sugars&#8221;, P. R. Joshi and <strong>Y.-P. Lee<\/strong>*, J. Am. Chem. Soc. <strong>128<\/strong>, 4984 (2024).<\/li>\n<li>&#8220;Infrared spectrum of the adduct 2-chloro-2-hydroperoxybut-3-ene [(C<sub>2<\/sub>H<sub>3<\/sub>)CCl(CH<sub>3<\/sub>)OOH] of the reaction between the Criegee intermediate methyl vinyl ketone oxide [C<sub>2<\/sub>H<sub>3<\/sub>C(CH<sub>3<\/sub>)OO] and HCl&#8221;, H. Wang and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>128<\/strong>, 8690 (2024).<\/li>\n<li>&#8220;Electronic spectroscopy of ovalene: Reassignment of the <em>S<\/em><sub>2<\/sub>(<em>B<\/em><sub>3u<\/sub>)\u2013 <em>S<\/em><sub>0<\/sub>(<em>A<\/em><sub>g<\/sub>) transition&#8221;, I. Weber*, J. Langner, H. A. Witek, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. Lett. <strong>15<\/strong>, 10696 (2024).<\/li>\n<li>&#8220;Rate coefficient and branching ratio for the formation of Criegee intermediate <em>syn<\/em>-\/<em>anti<\/em>-CH<sub>3<\/sub>CHOO from CH<sub>3<\/sub>CHI + O<sub>2<\/sub> and the self-reaction of <em>syn<\/em>-\/<em>anti<\/em>-CH<sub>3<\/sub>CHOO determined with simultaneous IR\/UV probes&#8221;, T.-Y. Kao, C.-A. Chung, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>128<\/strong>, 9453 (2024).<\/li>\n<li>&#8220;Unique applications of <em>para<\/em>-hydrogen matrix isolation to spectroscopy and astrochemistry&#8221;, I.Weber, P. R. Joshi, D. T. Anderson*, <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. Lett. <strong>15<\/strong>, 11361 (2024). <strong>(Perspective)<\/strong><\/li>\n<li>&#8220;Identification of the HOCHC(O)NH<sub>2<\/sub> radical intermediate in the reaction of H + glycolamide in solid <em>para<\/em>-hydrogen and its implication to the interstellar formation of higher-order amides and polypeptides&#8221;, P. R. Joshi* and <strong>Y.-P. Lee<\/strong>*, ACS Earth Space Chem. <strong>9<\/strong>, 769 (2025). <strong>(Special Issue: Harold Linnartz Festschrift)<\/strong><\/li>\n<li>&#8220;Conformation-specific rate coefficients of CH<sub>3<\/sub>CHOO + HCl determined with multiple IR\/UV absorption probes&#8221;, T.-Y. Kao, C.-A. Chung, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. Lett. <strong>16<\/strong>, 6455 (2025).<\/li>\n<li>&#8220;Conformation-specific reactions of Criegee intermediates&#8221;, C.-A. Chung, T.-Y. Kao, and<strong> Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>163<\/strong>, 130901 (2025). <strong>(Perspective)<\/strong><\/li>\n<li>&#8220;Infrared study of electron-bombarded phenanthrene (C<sub>14<\/sub>H<sub>10<\/sub>)\/<em>para<\/em>-H<sub>2<\/sub> matrices: Isomers of protonated phenanthrene (1-, 3-, 4-, and 9-H<sup>+<\/sup>C1<sub>4<\/sub>H<sub>10<\/sub>)&#8221;, J.-Y. Feng and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>129<\/strong>, 9260 (2025).\u00a0 <strong>(Special Issue: Michael A. Duncan Festschrift)<\/strong><\/li>\n<\/ol>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-7sn7wx-3-efa166c266390a3df100551049b16cae'  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 av-inherit-border-color'  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-2' data-slide-speed=\"200\" data-title=\"2016-2020\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2016-2020\" data-aria_expanded=\"Click to collapse: 2016-2020\">2016-2020<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 av-inherit-border-color'  itemprop=\"text\" ><ol>\n<li>&#8220;Manifestations of torsion-CH stretch coupling in the infrared spectrum of CH<sub>3<\/sub>OO&#8221;, K.-H. Hsu, Y.-H. Huang, <strong>Y.-P. Lee<\/strong>*, M. Huang, T. A. Miller*, and A. B. McCoy*, J. Phys. Chem. A <strong>120<\/strong>, 4827 (2016). <strong>(Special Issue: Piergiorgio Casavecchia and Antonio Lagana Festschrift)<\/strong><\/li>\n<li>&#8220;Infrared absorption of <em>t<\/em>-HOCO<sup>+<\/sup>, H<sup>+<\/sup>(CO<sub>2<\/sub>)<sub>2<\/sub>, and HCO<sub>2<\/sub><sup>\u2212<\/sup> produced in electron bombardment of CO<sub>2<\/sub> in solid <em>para<\/em>-H<sub>2<\/sub>&#8220;, P. Das, M. Tsuge, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>145<\/strong>, 014306 (2016).<\/li>\n<li>&#8220;The infrared spectrum of protonated ovalene in solid <em>para<\/em>-hydrogen and its possible contribution to interstellar unidentified infrared emission&#8221;, M. Tsuge*, M. Bahou, Y.-J. Wu, L. Allamandola, and <strong>Y.-P. Lee<\/strong>*, Astrophys. J. <strong>825<\/strong>, 96 (2016).<\/li>\n<li>&#8220;Infrared absorption spectrum of the simplest deuterated Criegee intermediate CD<sub>2<\/sub>OO&#8221;, Y.-H. Huang, Y. Nishimura, H. A. Witek*, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>145<\/strong>, 044305 (2016).<\/li>\n<li>&#8220;Infrared absorption of 1-chloro-2-methyl-2-propyl [\u2022C(CH<sub>3<\/sub>)<sub>2<\/sub>CH<sub>2<\/sub>Cl] and 2-chloro-2-methylpropyl [\u2022CH<sub>2<\/sub>C(CH<sub>3<\/sub>)<sub>2<\/sub>Cl] radicals produced in the addition reactions of Cl with isobutene (<em>i<\/em>-C<sub>4<\/sub>H<sub>8<\/sub>) in solid\u00a0<em>para<\/em>-hydrogen&#8221;, C.-Y. Chou and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>145<\/strong>, 134302 (2016).<\/li>\n<li>&#8220;Infrared spectra of ovalene (C<sub>32<\/sub>H<sub>14<\/sub>) and hydrogenated ovalene (C<sub>32<\/sub>H<sub>15<\/sub>) in solid\u00a0<em>para<\/em>-hydrogen&#8221;, M. Tsuge*, M. Bahou, Y.-J. Wu, L. Allamandola, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>18<\/strong>, 28864 (2016).<\/li>\n<li>&#8220;Infrared spectral identification of the Criegee intermediate (CH<sub>3<\/sub>)<sub>2<\/sub>COO&#8221;, Y.-Y. Wang, C.-Y. Chung, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>145<\/strong>, 154303 (2016).<\/li>\n<li>&#8220;Laser-induced fluorescence of NO isolated in solid <em>p<\/em>-H<sub>2<\/sub>&#8220;, S.-C. Huang and <strong>Y.-P. Lee<\/strong>*, Chem. Phys. Lett. <strong>665<\/strong>, 53 (2016).<\/li>\n<li>&#8220;Infrared spectra of two isomers of protonated carbonyl sulfide (HOCS<sup>+<\/sup> and HSCO<sup>+<\/sup>) and <em>t<\/em>-HOCS in solid <em>para<\/em>-hydrogen&#8221;, M. Tsuge* and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>145<\/strong>, 164308 (2016).<\/li>\n<li>&#8220;New experimental evidence to support roaming in the reaction Cl + isobutene (<em>i<\/em>-C<sub>4<\/sub>H<sub>8<\/sub>) &#8220;, L.-W. Chen, C.-M. Hung, H. Matsui, and <strong>Y.-P. Lee<\/strong>*, Sci. Rep. <strong>7<\/strong>, 40105 (2017).<\/li>\n<li>&#8220;Infrared spectra of HSCS<sup>+<\/sup>, <em>c<\/em>-HSCS, and HCS<sub>2<\/sub><sup>\u2212<\/sup> produced on electron bombardment of CS<sub>2<\/sub> in solid <em>para<\/em>-hydrogen&#8221;, M. Tsuge* and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>19<\/strong>, 9641 (2017).<\/li>\n<li>&#8220;Infrared absorption of methanol-water clusters (CH<sub>3<\/sub>OH)<sub>n<\/sub>(H<sub>2<\/sub>O), <em>n<\/em> = 1\u20134, recorded with the VUV-ionization\/IR-depletion technique&#8221;, Y.-F. Lee, A.-M. Kelterer*, G. Matisz, S. Kuns\u00e1gi-M\u00e1t\u00e9, C.-Y. Chung, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>146<\/strong>, 144308 (2017).<\/li>\n<li>&#8220;Computational chemical kinetics for the reaction of Criegee intermediate CH<sub>2<\/sub>OO with HNO<sub>3<\/sub> and its catalytic conversion to OH and HCO&#8221;, P. Raghunath,\u00a0<strong>Y.-P. Lee<\/strong>*, and M. C. Lin*, J. Phys. Chem. A <strong>121<\/strong>, 3871 (2017).<\/li>\n<li>&#8220;Reaction of H + HONO in solid <em>para<\/em>-hydrogen: infrared spectrum of \u2022ONH(OH)&#8221;, K. A. Haupa,A. G. G. M. Tielens*, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>19<\/strong>, 16169 (2017).<\/li>\n<li>&#8220;Infrared spectra and anharmonic coupling of proton-bound nitrogen dimers N<sub>2<\/sub>-H<sup>+<\/sup>-N<sub>2<\/sub>, N<sub>2<\/sub>-D<sup>+<\/sup>-N<sub>2<\/sub>, and <sup>15<\/sup>N<sub>2<\/sub>-H<sup>+<\/sup>&#8211;<sup>15<\/sup>N<sub>2<\/sub> in solid <em>para<\/em>-hydrogen&#8221;, H.-Y. Liao*, M. Tsuge*, J. A. Tan, J.-L. Kuo, and <strong>Y.-P. Lee<\/strong>, Phys. Chem. Chem. Phys. <strong>19<\/strong>, 20484 (2017).<\/li>\n<li>&#8220;Vibrational autoionization of state-selective jet-cooled methanethiol (CH<sub>3<\/sub>SH) investigated with infrared + vacuum-ultraviolet photoionization&#8221;, M. Xie, Z. Shen, S. T. Pratt*, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>19<\/strong>, 29153 (2017).<\/li>\n<li>&#8220;Infrared absorption spectra of partially deuterated methoxy radicals CH<sub>2<\/sub>DO and CHD<sub>2<\/sub>O isolated in solid <em>para<\/em>-hydrogen&#8221;, K. A. Haupa, B. Johnson, E. Sibert III*, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>147<\/strong>, 154305 (2017).<\/li>\n<li>&#8220;Infrared spectra of the 1\u2011chloromethyl-1-methylallyl and 1\u2011chloromethyl-2-methylallyl radicals isolated in solid <em>para<\/em>-hydrogen&#8221;, Jay C. Amicangelo* and Yuan-Pern Lee*, J. Phys. Chem. A <strong>121<\/strong>, 8771 (2017). <strong>(Special Issue: W. Lester S. Andrews Festschrift)<\/strong><\/li>\n<li>&#8220;Modeling the CH stretch\/torsion\/rotation couplings in methyl peroxy (CH<sub>3<\/sub>OO)&#8221;, M. Huang, T. A. Miller*, A. B. McCoy*, K.-H. Hsu, Y.-H. Huang, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>121<\/strong>, 9619 (2017).<\/li>\n<li>&#8220;Spectroscopy of prospective interstellar ions and radicals isolated in <em>para<\/em>-hydrogen matrices&#8221;, M. Tsuge*, C.-Y. Tseng, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>20<\/strong>, 5344 (2018). <strong>(Perspective Article and Cover)<\/strong><\/li>\n<li>&#8220;Detection of transient infrared absorption of SO<sub>3<\/sub>and 1,3,2-dioxathietane-2,2-dioxide [<em>cyc<\/em>-(CH<sub>2<\/sub>)O(SO<sub>2<\/sub>)O] in the reaction CH<sub>2<\/sub>OO+SO<sub>2<\/sub>&#8220;, Y.-Y. Wang, M. R. Dash, C.-Y. Chung, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>148<\/strong>, 064301 (2018).<\/li>\n<li>&#8220;Photodissociation of CF<sub>2<\/sub>ICF<sub>2<\/sub>I in solid <em>para<\/em>-hydrogen: infrared spectrum of <em>anti<\/em>&#8211; and <em>gauche<\/em>-C<sub>2<\/sub>F<sub>4<\/sub>I radicals&#8221;, K. Haupa, M. Lim, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>20<\/strong>, 12650 (2018).<\/li>\n<li>&#8220;Spectral characterization of three-electron two-center (3e-2c) bonds of gaseous CH<sub>3<\/sub>S\u2234S(H)CH<sub>3<\/sub> and (CH<sub>3<\/sub>SH)<sub>2<\/sub><sup>+<\/sup> and enhancement of the 3e-2c bond on protonation&#8221;, M. Xie*, Z. Shen, D. Wang, A. Fujii, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. Lett. <strong>9<\/strong>, 3725 (2018).<\/li>\n<li>&#8220;Infrared spectra of 3-hydroxy-(1H)-pyridinium cation and 3-hydroxy-(1H)-pyridinyl radical isolated in solid <em>para<\/em>-hydrogen&#8221;, M. Tsuge*, C.-P. Lai, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>149<\/strong>, 014306 (2018).<\/li>\n<li>&#8220;Identification and self-reaction kinetics of Criegee intermediates <em>syn<\/em>-CH<sub>3<\/sub>CHOO and CH<sub>2<\/sub>OO via high-resolution infrared spectra with a quantum-cascade laser&#8221;, P.-L. Luo*, Y. Endo, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. Lett. <strong>9<\/strong>, 4391 (2018).<\/li>\n<li>&#8220;Infrared spectrum of protonated corannulene H<sup>+<\/sup>C<sub>20<\/sub>H<sub>10<\/sub> in solid <em>para<\/em>-hydrogen and its potential contribution to interstellar unidentified infrared bands&#8221;, P. Sundararajan, M. Tsuge*, M. Baba, and <strong>Y.-P. Lee<\/strong>*, ACS Earth Space Chem. <strong>2<\/strong>, 1001 (2018).<\/li>\n<li>&#8220;High-resolution vibration-rotational spectra and rotational perturbation of the OO-stretching (<em>\u03bd<\/em><sub>6<\/sub>) band of CH<sub>2<\/sub>OO between 879.5 and 932.0 cm<sup>\u22121<\/sup>&#8220;, P.-L. Luo*, Y. Endo, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>20<\/strong>, 25806 (2018).<\/li>\n<li>&#8220;Infrared spectroscopy of propene in solid <em>para<\/em>-hydrogen and helium droplets: The role of matrix shifts in the analysis of anharmonic resonances&#8221;, G. T. Pullen, P. R. Franke, <strong>Y.-P. Lee<\/strong>, and G. E. Douberly*, J. Mol. Spec. <strong>354<\/strong>, 7 (2018).<\/li>\n<li>&#8220;Activation of molecular hydrogen by arylcarbenes&#8221;, E. Mendez\u2010Vega, M. Maehara, A. H. Raut, J. Mieres\u2010Perez, M. Tsuge, <strong>Y.\u2010P. Lee<\/strong>*, and W. Sander*, Chem.-Eur. J. <strong>24<\/strong>, 18801 (2018).<\/li>\n<li>&#8220;Infrared spectra of the 1,1-dimethylallyl and 1,2-dimethylallyl radicals isolated in solid <em>para<\/em>-hydrogen&#8221;, J. C. Amicangelo* and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>149<\/strong>, 204304 (2018).<\/li>\n<li>&#8220;Formation and infrared identification of protonated fluoranthene isomers 3-, 9-, and 10-C<sub>16<\/sub>H<sub>11<\/sub><sup>+<\/sup> in solid <em>para<\/em>-H<sub>2<\/sub>&#8220;, A. Chakraborty and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>21<\/strong>, 1820 (2019).<\/li>\n<li>&#8220;Effects of solvent molecules on hemi-bonded (CH<sub>3<\/sub>SH)<sub>2<\/sub><sup>+<\/sup>: infrared absorption of [(CH<sub>3<\/sub>SH)<sub>2<\/sub>\u2013X]<sup>+<\/sup> with X = H<sub>2<\/sub>O, (CH<sub>3<\/sub>)<sub>2<\/sub>CO, or NH<sub>3<\/sub> and (CH<sub>3<\/sub>SH)<em><sub>n<\/sub><\/em><sup>+<\/sup> (<em>n<\/em> = 3\u20136)&#8221;, M. Xie*, H.-R. Tsai, A. Fujii, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>21<\/strong>, 16055 (2019).<\/li>\n<li>&#8220;Hydrogen abstraction\/addition tunneling reactions elucidate the interstellar H<sub>2<\/sub>NCHO\/HNCO ratio and H<sub>2<\/sub> formation&#8221;, K. A. Haupa*, G. Tarczay*, and <strong>Y.-P. Lee<\/strong>*, J. Am. Chem. Soc. <strong>141<\/strong>, 11614 (2019).<\/li>\n<li>&#8220;Infrared emission from photodissociation of methyl formate [HC(O)OCH<sub>3<\/sub>] at 248 and 193 nm : Absence of roaming signature&#8221;, L. Lanfri, Y.-L. Wang, T. V. Pham, T. Nguyen, M. A. B. Paci, M.-C. Lin*, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>123<\/strong>, 6130 (2019).<\/li>\n<li>&#8220;Infrared spectroscopy of the <em>n<\/em>-propyl and <em>i<\/em>-propyl radicals in solid <em>para<\/em>-hydrogen&#8221;, G. T. Pullen, P. R. Franke, K. A. Haupa, <strong>Y.-P. Lee<\/strong>*, and G. E. Douberly*, J. Mol. Spec. <strong>363<\/strong>, 111170 (2019).<\/li>\n<li>&#8220;Infrared spectrum of hydrogenated corannulene <em>rim<\/em>-HC<sub>20<\/sub>H<sub>10<\/sub> isolated in solid <em>para<\/em>-hydrogen&#8221;, P. Sundararajan, M. Tsuge*, M. Baba, H. Sakurai, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>151<\/strong>, 044304 (2019).<\/li>\n<li>&#8220;Rate coefficient of the reaction CH<sub>2<\/sub>OO + NO<sub>2<\/sub> probed with a quantum-cascade laser near 11 \u00b5m&#8221;, P.-L. Luo*, C.-A. Chung, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>21<\/strong>, 17578 (2019). <strong>(2019 HOT PCCP article)<\/strong><\/li>\n<li>&#8220;Detailed mechanism and kinetics of the reaction of Criegee intermediate CH<sub>2<\/sub>OO with HCOOH investigated via infrared identification of conformers of hydroperoxymethyl formate and formic acid anhydride&#8221;, C.-A. Chung, J.-W. Su, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>21<\/strong>, 21445 (2019).<\/li>\n<li>&#8220;Hydrogen-atom tunneling reactions with methyl formate in solid <em>para<\/em>-hydrogen: infrared spectra of the methoxy carbonyl (\u2022C(O)OCH<sub>3<\/sub>) and formyloxy methyl (HC(O)OCH<sub>2<\/sub>) radicals&#8221;, K. A. Haupa*, A. I. Strom, D. T. Anderson*, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>151<\/strong>, 234302 (2019).<\/li>\n<li>&#8220;Hydrogen abstraction in astrochemistry: Formation of \u2022CH<sub>2<\/sub>CONH<sub>2<\/sub> in the reaction of H atom with acetamide (CH<sub>3<\/sub>CONH<sub>2<\/sub>) and photolysis of \u2022CH<sub>2<\/sub>CONH<sub>2<\/sub> to form ketene (CH<sub>2<\/sub>CO) in solid <em>para<\/em>-hydrogen&#8221;, K. A. Haupa*, W.-S. Ong, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>22<\/strong>, 6192 (2020).<\/li>\n<li>&#8220;Infrared spectra of isomers of protonated aniline in solid <em>para<\/em>-hydrogen&#8221;, M. Tsuge*, Y.-H. Chen, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>124<\/strong>, 2253 (2020).<\/li>\n<li>&#8220;Label-free optical microscope based on a phase-modulated femtosecond pump-probe approach with subdiffraction resolution&#8221;, A. Fathi, C.-Y. Chung, <strong>Y.-P. Lee<\/strong>, and E. W.-G. Diau*, ACS Photonics <strong>7<\/strong>, 607 (2020).<\/li>\n<li>&#8220;Reaction of CH<sub>2<\/sub>Cl radical with O<sub>2<\/sub> in solid <em>para<\/em>-hydrogen: Infrared spectrum of <em>gauche<\/em>-CH<sub>2<\/sub>ClOO radical&#8221;, K. A. Haupa* and <strong>Y.-P. Lee<\/strong>*, J. Mol. Spectrosc. <strong>1215<\/strong>, 128214 (2020).<\/li>\n<li>&#8220;UV\/Vis<sup>+<\/sup> photochemistry database: structure, content and applications&#8221; A. Noelle, A. C. Vandaele,* J. Martin-Torres, C. Yuan, B. N. Rajasekhar, A. Fahr, G. K. Hartmann, D. Lary, <strong>Y.-P. Lee<\/strong>, P. Limao-Vieira, R. Locht, K. McNeill, J. J. Orlando, F. Salama, and R. P. Wayne, J. Quant. Spectrosc. Radiat. Transf. <strong>253<\/strong>, 107056 (2020).<\/li>\n<li>&#8220;Infrared spectra of (Z)- and (E)-\u2022C<sub>2<\/sub>H<sub>3<\/sub>C(CH<sub>3<\/sub>)I radicals produced upon photodissociation of (Z)- and (E)-(CH<sub>2<\/sub>I)HC=C(CH<sub>3<\/sub>)I in solid <em>para<\/em>-hydrogen&#8221;, K. A. Haupa*, K.-P. Chen, Y.-K. Li, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>124<\/strong>, 5887 (2020).<\/li>\n<li>&#8220;Dynamics of the reaction CH<sub>2<\/sub>I + O<sub>2<\/sub> probed via infrared emission of CO, CO<sub>2<\/sub>, OH and H<sub>2<\/sub>CO&#8221;, T.-Y. Chen and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>22<\/strong>, 17540 (2020).<\/li>\n<li>&#8220;Detection of a Criegee intermediate with an unsaturated hydrocarbon substituent: Fourier-transform microwave spectroscopy of methyl vinyl ketone oxide&#8221;, Y. Endo*, H. A. Witek, C.-A. Chung, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>124<\/strong>, 6203 (2020).<\/li>\n<li>&#8220;Infrared spectroscopy of H<sup>+<\/sup>(CO)<sub>2<\/sub> in the gas phase and in <em>para<\/em>-hydrogen matrices&#8221;, D. Leicht, B. Rittgers, G. Douberly, J. P. Wagner, D. McDonald II, D. Mauney, M. Tsuge*, <strong>Y.-P. Lee<\/strong>, and M. Duncan*, J. Chem. Phys. <strong>153<\/strong>, 084305 (2020).<\/li>\n<li>&#8220;A direct mapping approach to understand carrier relaxation dynamics in varied regions of a polycrystalline perovskite film&#8221;, A. Fathi, E. Jokar, <strong>Y.-P. Lee<\/strong>, E. W.-G. Diau*, Angew. Chem. Int. Ed. <strong>59<\/strong>, 19001 (2020).<\/li>\n<li>&#8220;Infrared spectra of mono-hydrogenated aniline, <em>ortho<\/em>&#8211; and <em>para<\/em>-HC<sub>6<\/sub>H<sub>5<\/sub>NH<sub>2<\/sub>, generated in solid <em>para<\/em>-hydrogen&#8221;, M. Tsuge*, Y.-H. Chen, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>124<\/strong>, 7500 (2020).<\/li>\n<li>&#8220;IR-VUV spectroscopy of pyridine dimer, trimer and pyridine-ammonia complexes in a supersonic jet&#8221;, J.-Y. Feng, <strong>Y.-P. Lee<\/strong>, C. Zhu, P.-J. Hsu, J.-L. Kuo*, and T. Ebata*, Phys. Chem. Chem. Phys. <strong>22<\/strong>, 21520 (2020).<\/li>\n<li>&#8220;Hydrogenation of pyrrole: Infrared spectra of the 2,3-dihydropyrrol-2-yl and 2,3-dihydropyrrol-3-yl radicals isolated in solid <em>para<\/em>-hydrogen&#8221;, J. Amicangelo* and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>153<\/strong>, 164302 (2020).<\/li>\n<\/ol>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-7sn7wx-2-f34d3d89d3090f18af726c30e77d6a81'  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 av-inherit-border-color'  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-3' data-slide-speed=\"200\" data-title=\"2011-2015\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2011-2015\" data-aria_expanded=\"Click to collapse: 2011-2015\">2011-2015<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 av-inherit-border-color'  itemprop=\"text\" ><ol>\n<li>&#8220;Infrared absorption of CH<sub>3<\/sub>OSO detected with time-resolved Fourier-transform spectroscopy&#8221;, J.-D. Chen and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>134<\/strong>, 094304 (2011). Selected for the April 2011 issue of Virtual Journal of Ultrafast Science.<\/li>\n<li>&#8220;Franck-Condon simulation of the <em>A<\/em><sup>1<\/sup><em>B<\/em><sub>2<\/sub>\u2192<em>X<\/em><sup>1<\/sup><em>A<\/em><sub>1<\/sub> dispersed fluorescence spectrum of fluorobenzene and its rate of the internal conversion&#8221;, R. He, L. Yang, C. Zhu*, M. Yamaki, <strong>Y.-P. Lee<\/strong>, and S. H. Lin, J. Chem. Phys. <strong>134<\/strong>, 094313 (2011).<\/li>\n<li>&#8220;He(I) ultraviolet photoelectron spectroscopy of benzene and pyridine in supersonic molecular beams using photoelectron imaging&#8221;, -Y. Liu, K. Almana, J. Matsumoto, K. Nishizawa, H. Kohguchi, <strong>Y.-P. Lee<\/strong>, and T. Suzuki*, J. Phys. Chem. A <strong>115<\/strong>, 2953 (2011).<\/li>\n<li>&#8220;Infrared absorption of CH<sub>3<\/sub>SO<sub>2<\/sub> observed upon irradiation of a <em>p<\/em>-H<sub>2<\/sub> matrix containing CH<sub>3<\/sub>I and SO<sub>2<\/sub>&#8220;, Y.-F. Lee and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>134<\/strong>, 124314 (2011).<\/li>\n<li>&#8220;Infrared absorption of methanol clusters (CH<sub>3<\/sub>OH)<em><sub>n<\/sub><\/em> with <em>n<\/em> = 2-6 recorded with a time-of-flight mass spectrometer using IR depletion and VUV ionization&#8221;, H.-L. Han, Camacho, H. A. Witek, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>134<\/strong>, 144309 (2011).<\/li>\n<li>&#8220;<strong>Blue\/Near UV light emission from hybrid InN\/TiO<sub>2<\/sub> nanoparticle films<\/strong>&#8220;, C.-W. Wu, C.-W. Lu,<strong> Y.-P. Lee<\/strong>, Y.-J. Wu*, B.-M. Cheng, and M. C. Lin*, J. Mater. Chem. <strong>21<\/strong>, 8540 (2011).<\/li>\n<li>&#8220;Infrared spectrum of mass-selected CH<sub>3<\/sub>S radicals investigated with infrared + vacuum ultraviolet photoionization&#8221;, H.-L. Han, L. Fu, and <strong>Y.-P. Lee<\/strong>*, Chem. Phys. Lett. <strong>515<\/strong>, 1 (2011). (Frontier Article)<\/li>\n<li>&#8220;Photodissociation dynamics of benzaldehyde (C<sub>6<\/sub>H<sub>5<\/sub>CHO) at 266, 248, and 193 nm&#8221;, Bagchi, Y.-H. Huang, Z. F. Xu, P. Raghunath, Y. T. Lee, C.-K. Ni*, M. C. Lin*, and <strong>Y.-P. Lee<\/strong>*, Chem. Asian J. <strong>6<\/strong>, 2961 (2011).<\/li>\n<li>&#8220;Reactions between chlorine atom and acetylene in solid <em>para<\/em>-hydrogen: Infrared spectrum of the 1-chloroethyl radical&#8221;, B. Golec and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>135<\/strong>, 174302 (2011).<\/li>\n<li>&#8220;Infrared absorption of gaseous benzoylperoxy radical C<sub>6<\/sub>H<sub>5<\/sub>C(O)OO recorded with a step-scan Fourier-transform spectrometer&#8221;, B. Golec, J.-D. Chen, and <strong>Y.-P Lee<\/strong>*, J. Chem. Phys. <strong>135<\/strong>, 224302 (2011).<\/li>\n<li>&#8220;Infrared spectrum of the 2-chloroethyl radical in solid <em>para<\/em>-hydrogen&#8221;, J. C. Amicangelo*, B. Golec, M. Bahou, and <strong>Y.-P. Lee<\/strong>*, Chem. Chem. Phys. <strong>14<\/strong>, 1014 (2012).<\/li>\n<li>&#8220;Infrared absorption of CH<sub>3<\/sub>OSO and CD<sub>3<\/sub>OSO radicals produced upon photolysis of CH<sub>3<\/sub>OS(O)Cl and CD<sub>3<\/sub>OS(O)Cl in <em>p<\/em>-H<sub>2<\/sub> matrices&#8221;,-F. Lee, L.-J. Kong, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>136<\/strong>, 124510 (2012).<\/li>\n<li>&#8220;A new method for investigating infrared spectra of protonated benzene (C<sub>6<\/sub>H<sub>7<\/sub><sup>+<\/sup>) and cyclohexadienyl radical (<em>c<\/em>-C<sub>6<\/sub>H<sub>7<\/sub>) using para-hydrogen&#8221;, M. Bahou, Y.-J. Wu*, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>136<\/strong>, 154304 (2012). Selected as Editor&#8217;s choice, (2012).<\/li>\n<li>&#8220;Infrared absorption of gaseous benzoyl radical C<sub>6<\/sub>H<sub>5<\/sub>CO recorded with a step-scan Fourier-transform spectrometer&#8221;, S.-Y. Lin and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>116<\/strong>, 6366 (2012).<\/li>\n<li>&#8220;Design and characterization of heteroleptic ruthenium complexes containing benzimidazole ligands for dye-sensitized solar cells: The effect of fluorine substituents on photovoltaic performance&#8221;, W.-K. Huang, H.-P. Wu, P.-L. Lin, <strong>Y.-P. Lee<\/strong>, and Eric W.-G. Diau*, J. Phys. Chem. Lett. <strong>3<\/strong>, 1830 (2012).<\/li>\n<li>&#8220;Study of the reactive excited-state dynamics of delipidated bacteriorhodopsin upon surfactant treatments&#8221;, C.-W. Cheng, <strong>Y.-P. Lee<\/strong>*, and L.-K. Chu*, Chem. Phys. Lett. <strong>539<\/strong>, 151 (2012).<\/li>\n<li>&#8220;Electroabsorption and electrophotoluminescence of poly(2,3-diphenyl-5-hexyl-p-phenylene vinylene)&#8221;, S. Mehata, C.-S. Hsu, <strong>Y.-P. Lee<\/strong>, and N. Ohta*, J. Phys. Chem. C <strong>116<\/strong>, 14789 (2012).<\/li>\n<li>&#8220;Infrared absorption of <em>trans<\/em>-1-chloromethylallyl and <em>trans<\/em>-1-methylallyl radicals produced in photochemical reactions of <em>trans<\/em>-1,3-butadiene and C<em>l<\/em><sub>2<\/sub> in solid <em>para<\/em>-hydrogen&#8221;, M. Bahou, J.-Y. Wu, K. Tanaka, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>137<\/strong>, 084310 (2012).<\/li>\n<li>&#8220;Extrinsic charge traps in disordered organic materials&#8221;, L.-B. Lin*, C.-W. Cheng, C.-A. Dai, and <strong>Y.-P. Lee<\/strong>, J. Appl. Phys. <strong>112<\/strong>, 073715 (2012).<\/li>\n<li>&#8220;Dynamics of the reactions of O(<sup>1<\/sup>D) with CD<sub>3<\/sub>OH and CH<sub>3<\/sub>OD studied with time-resolved Fourier-transform IR spectroscopy&#8221;, C.-K. Huang, Z.-F. Xu, M. Nakajima*, Hue M. T. Nguyen, M. C. Lin*, S. Tsuchiya*, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>137<\/strong>, 164307 (2012).<\/li>\n<li>&#8220;Infrared absorption of methanethiol clusters (CH<sub>3<\/sub>SH)<em><sub>n<\/sub><\/em>, <em>n<\/em> = 2-5, recorded with a time-of-flight mass spectrometer using IR depletion and VUV ionization&#8221;, L. Fu, H.-L. Han, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>137<\/strong>, 234307 (2012).<\/li>\n<li>&#8220;Formation and infrared absorption of protonated naphthalenes (1-C<sub>10<\/sub>H<sub>9<\/sub><sup>+<\/sup> and 2-C<sub>10<\/sub>H<sub>9<\/sub><sup>+<\/sup>) and their neutral counterparts in solid <em>para<\/em>-hydrogen&#8221;, M. Bahou, Y.-J. Wu*, and <strong>Y.-P. Lee<\/strong>*, Chem. Chem. Phys. <strong>15<\/strong>, 1907 (2013).<\/li>\n<li>&#8220;Reactions between atomic chlorine and pyridine in solid <em>para<\/em>-hydrogen: infrared spectrum of the 1-chloropyridinyl (C<sub>5<\/sub>H<sub>5<\/sub>N-Cl) radical&#8221;, P. Das, M. Bahou, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>138<\/strong>, 054307 (2013).<\/li>\n<li>&#8220;Infrared identification of the \u03c3-complex of Cl-C<sub>6<\/sub>H<sub>6<\/sub> in the reaction of chlorine atom and benzene in solid <em>para<\/em>-hydrogen&#8221;, M. Bahou, H. Witek, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>138<\/strong>, 074310 (2013).<\/li>\n<li>&#8220;Effects of hydrogen bonding on internal conversion of GFP-like chromophores. I. The <em>para<\/em>-amino systems&#8221;, G.-J. Huang, C.-W. Cheng, H.-Y. Hsu, Ch. Prabhakar, <strong>Y.-P. Lee<\/strong>*, Eric W.-G. Diau*, and J.-S. Yang*, J. Phys. Chem. B <strong>117<\/strong>, 2695 (2013).<\/li>\n<li>&#8220;Effects of hydrogen bonding on internal conversion of GFP-like chromophores. II. The <em>meta<\/em>-amino system&#8221;, C.-W. Cheng, G.-J. Huang, H.-Y. Hsu, Ch. Prabhakar, <strong>Y.-P. Lee<\/strong>*, Eric W.-G. Diau*, and J.-S. Yang*, J. Phys. Chem. B <strong>117<\/strong>, 2705 (2013).<\/li>\n<li>&#8220;Infrared absorption spectrum of the simplest Criegee intermediate CH<sub>2<\/sub>OO&#8221;, Y.-T. Su, Y.-H. Huang, H. A. Witek*, and <strong>Y.-P. Lee<\/strong>*, Science <strong>340<\/strong>, 174 (2013).<\/li>\n<li>&#8220;Infrared spectra of protonated pyrene and its neutral counterpart in solid <em>para<\/em>-hydrogen&#8221;, M. Bahou, Y.-J. Wu*, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. Lett. <strong>4<\/strong>, 1989 (2013).<\/li>\n<li>&#8220;Infrared absorption of 3-propenonyl (\u2022CH<sub>2<\/sub>CHCO) radical generated upon photolysis of acryloyl chloride [CH<sub>2<\/sub>CHC(O)Cl] in solid <em>para<\/em>-H<sub>2<\/sub>&#8220;, P. Das and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>139<\/strong>, 084320 (2013).<\/li>\n<li>&#8220;Topology of conical\/surface intersections among five low-lying electronic states of CO<sub>2<\/sub>: Multireference configuration interaction calculations&#8221;, B. Zhou, C. Zhu*, Z. Wen, Z. Jiang, J. Yu,<strong> Y.-P. Lee<\/strong>, and S. H. Lin, J. Chem. Phys. <strong>139<\/strong>, 154302 (2013).<\/li>\n<li>&#8220;Infrared spectra of the 1-pyridinium (C<sub>5<\/sub>H<sub>5<\/sub>NH<sup>+<\/sup>) cation and pyridinyl (C<sub>5<\/sub>H<sub>5<\/sub>NH and 4-C<sub>5<\/sub>H<sub>6<\/sub>N) radicals isolated in solid <em>para<\/em>-hydrogen&#8221;, B. Golec, P. Das, M. Bahou, and<strong> Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>117<\/strong>, 13680 (2013). <strong>(Special Issue: Terry A. Miller Festschrift)<\/strong><\/li>\n<li>&#8220;Infrared spectra of protonated coronene and its neutral counterpart in solid parahydrogen: Implications for unidentified interstellar infrared emission bands&#8221;, M. Bahou, Y.-J. Wu*, and <strong>Y.-P. Lee<\/strong>*, Angew. Chem. Int. Ed. <strong>53<\/strong>, 1021 (2014).<\/li>\n<li>&#8220;Transient infrared absorption spectra of reaction intermediates detected with a step-scan Fourier-transform infrared spectrometer&#8221;, Y.-H. Huang, J.-D. Chen, K.-H. Hsu, L.-K. Chu*, and <strong>Y.-P. Lee<\/strong>*, J. Chin. Chem. Soc. <strong>61<\/strong>, 47 (2014). <strong>(Invited Mini-Review)<\/strong><\/li>\n<li>&#8220;Infrared spectra of free radicals and protonated species produced in <em>para<\/em>-hydrogen matrices&#8221;, M. Bahou, P. Das, Y.-F. Lee, Y.-J. Wu, and <strong>Y.-P. Lee<\/strong>*, Phys. Chem. Chem. Phys. <strong>16<\/strong>, 2200 (2014). <strong>(Invited Perspective Article)<\/strong><\/li>\n<li>&#8220;Extremely rapid self-reaction of the simplest Criegee intermediate CH<sub>2<\/sub>OO and its implications in atmospheric chemistry&#8221;, Y.-T. Su, H.-Y. Lin, R. Putikam, H. Matsui, M. C. Lin*, and <strong>Y.-P. Lee<\/strong>*, Nat. Chem. <strong>6<\/strong>, 477 (2014).<\/li>\n<li>&#8220;Femtosecond infrared transient absorption dynamics of benzimidazole-based ruthenium complexes on TiO<sub>2<\/sub> films for dye-sensitized solar cells&#8221;, H.-Y. Hsu, C.-W. Cheng, We.-K. Huang, <strong>Y.-P. Lee<\/strong>*, and Eric W.-G. Diau*, J. Phys. Chem. C <strong>118<\/strong>, 16904 (2014). <strong>(Special Issue: Michael Gra\u0308tzel Festschrift)<\/strong><\/li>\n<li>&#8220;Bimolecular reaction of CH<sub>3<\/sub> + CO in solid <em>p<\/em>-H<sub>2<\/sub>: infrared absorption of acetyl radical (CH<sub>3<\/sub>CO) and CH<sub>3<\/sub>-CO complex&#8221;, P. Das and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>140<\/strong>, 244303 (2014).<\/li>\n<li>&#8220;Alcohol dimers \u2013 how much diagonal OH anharmonicity?&#8221;, Kollipost, K. Papendorf, <strong>Y.-F. Lee<\/strong>, Y.-P. Lee, and M. A. Suhm*, Phys. Chem. Chem. Phys. <strong>16<\/strong>, 15948 (2014).<\/li>\n<li>&#8220;Femtosecond excitonic relaxation dynamics of perovskite on mesoporous films of Al<sub>2<\/sub>O<sub>3<\/sub> and NiO nanoparticles&#8221;, H.-Y. Hsu, C.-Y. Wang, A. Fathi, J.-W. Shiu, C.-C. Chung, P.-S. Shen, T.-F. Guo, P. Chen, <strong>Y.-P. Lee<\/strong>, and Eric W.-G. Diau*, Angew. Chem. Int. Ed. <strong>53<\/strong>, 9339 (2014).<\/li>\n<li>&#8220;Critical interpretation of CH- and OH- stretching regions for infrared spectra of methanol clusters (CH<sub>3<\/sub>OH)<em><sub>n<\/sub><\/em> (<em>n<\/em> = 2-5) using self-consistent-charge density functional tight-binding molecular dynamics simulations&#8221;, Y. Nishimura,<strong> Y.-P. Lee<\/strong>, S. Irle, and H. Witek*, J. Chem. Phys. <strong>141<\/strong>, 094303 (2014).<\/li>\n<li>&#8220;Detailed mechanism of the CH<sub>2<\/sub>I + O<sub>2<\/sub> reaction: Yield and self-reaction of the simplest Criegee intermediate CH<sub>2<\/sub>OO&#8221;, W.-L. Ting, C.-H. Chang, Y.-F. Lee, H. Matsui, <strong>Y.-P. Lee<\/strong>*, and Jim J.-M. Lin*, J. Chem. Phys. <strong>141<\/strong>, 104308 (2014).<\/li>\n<li>&#8220;Reaction dynamics of O(<sup>1<\/sup>D) + HCOOD\/DCOOH investigated with time-resolved Fourier-transform infrared emission spectroscopy&#8221;, S.-C. Huang, N. T. Nghia, R. Putikam, H. M. T. Nguyen, M. C. Lin*, S. Tsuchiya*, and<strong> Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>141<\/strong>, 154313 (2014).<\/li>\n<li>&#8220;Infrared absorption of gaseous CH<sub>2<\/sub>BrOO detected with a step-scan Fourier-transform absorption spectrometer&#8221;, Y.-H. Huang and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>141<\/strong>, 164302 (2014).<\/li>\n<li>&#8220;Infrared identification of proton-bound rare-gas dimers (XeHXe)<sup>+<\/sup>, (KrHKr)<sup>+<\/sup>, and (KrHXe)<sup>+<\/sup>and their deuterated species in solid hydrogen&#8221;, M. Tsuge, J. Kalinowski, R. B. Gerber*, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>119<\/strong>, 2651 (2015). <strong>(Special Issue: Markku Rasa\u0308nen Festschrift)<\/strong><\/li>\n<li>&#8220;Infrared absorption of CH<sub>3<\/sub>O and CD<sub>3<\/sub>O radicals isolated in solid <em>para<\/em>-H<sub>2<\/sub>&#8220;, Y.-F. Lee, W.-T. Chou, B. A. Johnson, D. P. Tabor, E. L. Sibert III*, and <strong>Y.-P. Lee<\/strong>*, J. Mol. Spectrosc. <strong>310<\/strong>, 57 (2015). <strong>(Spectroscopy of Radicals and Ions in Memory of Marilyn Jacox)<\/strong><\/li>\n<li>&#8220;Infrared absorption of iodomethylperoxy (<em>syn<\/em>-ICH<sub>2<\/sub>OO) radical generated upon photolysis of CH<sub>2<\/sub>I<sub>2<\/sub> and O<sub>2<\/sub> in solid <em>para<\/em>-H<sub>2<\/sub>&#8220;, -F. Lee and <strong>Y.-P. Lee<\/strong>*, Mol. Phys. <strong>113<\/strong>, 2148 (2015).<strong> (Special Issue: Special Issue in Honor of John Maier)<\/strong><\/li>\n<li>&#8220;Infrared identification of the Criegee intermediates <em>syn<\/em>&#8211; and<em> anti<\/em>-CH<sub>3<\/sub>CHOO, and their distinct conformation-dependent reactivity&#8221;, H.-Y. Lin, Y.-H. Huang, X. Wang, J. M. Bowman*, Y. Nishimura, H. A. Witek*, and <strong>Y.-P. Lee<\/strong>*, Nat. Comm. <strong>6<\/strong>, 7012 (2015).<\/li>\n<li>&#8220;Two HCl-elimination channels and two CO-formation channels detected with time-resolved infrared emission upon photolysis of acryloyl chloride [CH<sub>2<\/sub>CHC(O)Cl] at 193 nm&#8221;, P.-W. Lee, P. Scrape, L. J. Butler*, and<strong> Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>119<\/strong>, 7293 (2015). <strong>(Special Issue: 100 Years of Combustion Kinetics at Argonne)<\/strong><\/li>\n<li>&#8220;Infrared spectrum of the simplest Criegee intermediate CH<sub>2<\/sub>OO at resolution 0.25 cm<sup>-1<\/sup> and new assignments of bands 2\u03bd<sub>9<\/sub> and \u03bd<sub>5<\/sub>&#8220;, Y.-H. Huang, J. Li*, H. Guo, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>142<\/strong>, 214301 (2015).<\/li>\n<li>&#8220;Perspective: Spectroscopy and kinetics of gaseous Criegee intermediates&#8221;, <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>143<\/strong>, 020901 (2015). <strong>(Perspective Article, Cover Page)<\/strong><\/li>\n<li>&#8220;Simultaneous infrared detection of the ICH<sub>2<\/sub>OO radical and Criegee intermediate CH<sub>2<\/sub>OO: The pressure dependence of the yield of CH<sub>2<\/sub>OO in the reaction CH<sub>2<\/sub>I + O<sub>2<\/sub>&#8220;, Y.-H. Huang, L.-W. Chen, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. Lett. <strong>6<\/strong>, 4610 (2015).<\/li>\n<\/ol>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-7sn7wx-1-80a5e22423006002721e75aa53608682'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-4' data-fake-id='#toggle-id-4' class='toggler  av-title-above av-inherit-border-color'  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-4' data-slide-speed=\"200\" data-title=\"2006-2010\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2006-2010\" data-aria_expanded=\"Click to collapse: 2006-2010\">2006-2010<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-4' aria-labelledby='toggle-toggle-id-4' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color av-inherit-border-color'  itemprop=\"text\" ><ol>\n<li><\/li>\n<li>&#8220;Internal rotation and spin conversion of CH<sub>3<\/sub>OH in solid <em>para<\/em>-hydrogen&#8221;, <strong>Y.-P. Lee<\/strong>*, Y.-J. Wu, R. M. Lees, L.-H. Xu, and J. T. Hougen, Science <strong>311<\/strong>, 365 (2006).<\/li>\n<li>&#8220;Intensities of line features in vibration-rotational bands 2\u20130 to 6\u20130 of <sup>14<\/sup>N<sup>16<\/sup>O X<sup>2<\/sup>\u03a0<em><sub>r<\/sub><\/em> and experimental evaluation of a radial function for electric dipolar moment&#8221;,<strong> Y.-P. Lee<\/strong>, S.-L. Cheah, and J. F. Ogilvie*, Infrared Physics Tech. <strong>47<\/strong>, 227 (2006).<\/li>\n<li>&#8220;Infrared absorption of CH<sub>3<\/sub>SO<sub>2 <\/sub>detected with time-resolved Fourier-transform spectroscopy&#8221;, L.-K. Chu and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>124<\/strong>, 244301 (2006).<\/li>\n<li>&#8220;The <em>B<\/em> <sup>3<\/sup>\u00e5<sup>&#8211;<\/sup> state of the SO radical&#8221;, C.-P. Liu, N. L. Elliott, C. M. Western*, <strong>Y.-P. Lee<\/strong>, and R. Colin, J. Mol. Spectrosc. <strong>238<\/strong>, 213 (2006).<\/li>\n<li>&#8220;Absorption cross sections of NH<sub>3<\/sub>, NH<sub>2<\/sub>D, NHD<sub>2<\/sub>, and ND<sub>3<\/sub> in the spectral range 140\u2212220 nm and its implication for planetary isotopic fractionation&#8221;, -M. Cheng, H.-C. Lu, H.-K. Chen, M. Bahou, <strong>Y.-P. Lee<\/strong>, A. M. Mebel, L. C. Lee, M.-C. Liang, and Y. L. Yung, Astrophys. J. <strong>647<\/strong>, 1535 (2006).<\/li>\n<li>&#8220;Distribution of internal state of CO from O(<sup>1<\/sup>D) + CO determined with time-resolved Fourier-transform spectroscopy&#8221;, H.-F. Chen and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>110<\/strong>, 12096 (2006).<\/li>\n<li>&#8220;Photodissociation dynamics of fluorobenzene (C<sub>6<\/sub>H<sub>5<\/sub>F) at 157 and 193 nm: Branching ratios and distributions of kinetic energy&#8221;, S.-H. Lee*, C.-Y. Wu, S.-K. Yang, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>125<\/strong>, 144301 (2006).<\/li>\n<li>&#8220;Experimental and theoretical investigation of rate coefficients of the reaction S(<sup>3<\/sup><em>P<\/em>) + OCS in the temperature range 298-985 K&#8221;, C.-W. Lu, Y.-J. Wu, <strong>Y.-P. Lee<\/strong>*, R. S. Zhu, and M. C. Lin*, J. Chem. Phys. <strong>125<\/strong>, 164329 (2006).<\/li>\n<li>&#8220;Infrared spectra of C<sub>2<\/sub>H<sub>2<\/sub> under jet-cooled and <em>para<\/em>-H<sub>2<\/sub> matrix conditions&#8221;, Y.-C. Lee, V. Venkatesan, <strong>Y.-P. Lee<\/strong>*, P. Macko, K. Didiriche, and M. Herman*, Chem. Phys. Lett. <strong>435<\/strong>, 247 (2007).<\/li>\n<li>&#8220;Isotopic fractionation of nitrogen in ammonia in the troposphere of Jupiter&#8221;, M.-C. Liang*, B.-M. Cheng*, H.-C. Lu, H.-K. Chen, M. S. Alam,<strong> Y.-P. Lee<\/strong>*, and Y. L. Yung*, Astrophys. J. <strong>657<\/strong>, L117 (2007).<\/li>\n<li>&#8220;Infrared absorption of C<sub>6<\/sub>H<sub>5<\/sub>SO<sub>2<\/sub> detected with time-resolved Fourier-transform spectroscopy&#8221;, L.-K. Chu and<strong> Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>126<\/strong>, 134311 (2007).<\/li>\n<li>&#8220;Infrared absorption of gaseous ClCS detected with time-resolved Fourier-transform spectroscopy&#8221;, L.-K. Chu, H.-L. Han, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>126<\/strong>, 174310 (2007).<\/li>\n<li>&#8220;Experimental and theoretical studies of rate coefficients for the reaction O(<sup>3<\/sup>P) + C<sub>2<\/sub>H<sub>5<\/sub>OH at high temperatures&#8221;, C.-W. Wu, <strong>Y.-P. Lee<\/strong>*, S. Xu, and M. C. Lin*, J. Phys. Chem. A <strong>111<\/strong>, 6693 (2007).<\/li>\n<li>&#8220;Rovibronic bands of the transition of CH<sub>3<\/sub>OO and CD<sub>3<\/sub>OO detected with cavity ringdown absorption near 1.2-1.4 \u03bcm&#8221;, C.-Y. Chung, C.-W. Cheng, <strong>Y.-P. Lee<\/strong>*, H.-Y. Liao, E. N. Sharp, P. Rupper, and T. A. Miller*, J. Chem. Phys. <strong>127<\/strong>, 044311 (2007).<\/li>\n<li>&#8220;Relaxation dynamics of ruthenium complexes in solution, PMMA and TiO<sub>2<\/sub> films: the roles of self quenching and interfacial electron transfer&#8221;, C.-W. Chang, C. K. Chou, I-J. Chang, <strong>Y.-P. Lee<\/strong>, and E. W.-G. Diau*, J. Phys. Chem. C <strong>111<\/strong>, 13288 (2007).<\/li>\n<li>&#8220;Photodissociation dynamics of phenol&#8221;, C.-M. Tseng, Y. T. Lee, M.-F. Lin, C.-K. Ni, S.-Y. Liu, <strong>Y.-P. Lee<\/strong>*, Z. F. Xu, and M. C. Lin, J. Phys. Chem. A <strong>111<\/strong>, 9463 (2007).<\/li>\n<li>&#8220;Photoabsorption cross sections of NH<sub>3<\/sub>, NH<sub>2<\/sub>D, NHD<sub>2<\/sub>, and ND<sub>3<\/sub> in the spectral range 110-144 nm&#8221;, -J. Wu, H.-C. Lu, H.-K. Chen, B.-M. Cheng*, <strong>Y.-P. Lee<\/strong>*, and L. C. Lee*, J. Chem. Phys. <strong>127<\/strong>, 154311 (2007).<\/li>\n<li>&#8220;Infrared absorption of gaseous CH<sub>3<\/sub>OO detected with a step-scan Fourier-transform spectrometer&#8221;, D.-R. Huang, L.-K. Chu, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>127<\/strong>, 234318 (2007).<\/li>\n<li>&#8220;Theoretical investigation of molecular properties of the first excited state of phenoxyl radical&#8221;, C.-W. Cheng, <strong>Y.-P. Lee<\/strong>, and H. Witek*, J. Phys. Chem. A <strong>112<\/strong>, 2648 (2008).<\/li>\n<li>&#8220;Infrared absorption spectra of vinyl radicals isolated in solid Ne&#8221;, Y.-J. Wu,* M.-Y. Lin, B.-M. Cheng*, H.-F. Chen, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>128<\/strong>, 204509 (2008).<\/li>\n<li>&#8220;Direct spectral evidence of single-axis rotation and <em>ortho<\/em>-hydrogen-assisted nuclear spin conversion of CH<sub>3<\/sub>F in solid <em>para<\/em>-hydrogen&#8221;, <strong>Y.-P. Lee<\/strong>*, Y.-J. Wu, and J. T. Hougen, J. Chem. Phys. <strong>129<\/strong>, 104502 (2008). Selected as Editors&#8217; choice, Science <strong>322<\/strong>, 16 (2008).<\/li>\n<li>&#8220;Rovibronic bands of the transition of C<sub>6<\/sub>H<sub>5<\/sub>O and C<sub>6<\/sub>D<sub>5<\/sub>O detected with cavity ringdown absorption near 1.2 \u00b5m&#8221;, C.-W. Cheng, H. Witek, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>129<\/strong>, 154307 (2008).<\/li>\n<li>&#8220;Dynamics of reactions O(<sup>1<\/sup>D) + C<sub>6<\/sub>H<sub>6<\/sub> and C<sub>6<\/sub>D<sub>6<\/sub>&#8220;, H.-F. Chen, C.-W. Liang, J. J. Lin*,<strong>Y.-P. Lee<\/strong>*, J. F. Ogilvie, Z. F. Xu, and M. C. Lin*, J. Chem. Phys. <strong>129<\/strong>, 174303 (2008).<\/li>\n<li>&#8220;The \u03bd<sub>7<\/sub>, \u03bd<sub>8<\/sub>, and \u03bd<sub>11<\/sub> bands of propynal, C<sub>2<\/sub>HCHO, in the 650 cm<sup>-1<\/sup> region&#8221;, A. R. W. McKellar*, J. K.G. Watson, L.-K. Chu, and <strong>Y.-P. Lee<\/strong>, J. Mol. Spectrosc. <strong>252<\/strong>, 230 (2008).<\/li>\n<li>&#8220;Theoretical investigation of molecular properties of the first excited state of the thiophenoxyl radical&#8221;, C.-W. Cheng, <strong>Y.-P. Lee<\/strong>, and H. Witek*, J. Phys. Chem. A <strong>112<\/strong>, 11998 (2008).<\/li>\n<li>&#8220;Internal energy of HCl upon photolysis of 2-chloropropene at 193 nm investigated with time-resolved Fourier-transform spectroscopy and quasi-classical trajectories&#8221;, C.-M. Chang, Y.-H. Huang, S.-Y. Liu, <strong>Y.-P. Lee<\/strong>*, Pombar-P\u00e9rez, E. Mart\u00ednez-N\u00fa\u00f1ez, and S. A. V\u00e1zquez*, J. Chem. Phys. <strong>129<\/strong>, 224301 (2008).<\/li>\n<li>&#8220;Distribution of vibrational states of CO<sub>2<\/sub> in the reaction O(<sup>1<\/sup>D) + CO<sub>2<\/sub> from time-resolved Fourier-transform infrared emission spectra&#8221;, H.-F. Chen, H.-C. Chiang, H. Matsui, S. Tsuchiya*, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>113<\/strong>, 3431 (2009).<\/li>\n<li>&#8220;Infrared absorption of gaseous <em>c<\/em>-ClCOOH and <em>t<\/em>-ClCOOH recorded with a step-scan Fourier-transform spectrometer&#8221;, L.-K. Chu and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>130<\/strong>, 174304 (2009).<\/li>\n<li>&#8220;Femtosecond transient absorption of zinc porphyrins with oligo(phenylethylnyl) linkers in solution and on TiO<sub>2<\/sub> films&#8221;, C.-W. Chang, L. Luo, C.-K. Chou, C.-F. Lo, C.-Y. Lin, C.-S. Hung, <strong>Y.-P. Lee<\/strong>, and E. W.-G. Diau*, J. Phys. Chem. C <strong>113<\/strong>, 11524 (2009).<\/li>\n<li>&#8220;Electric field effects on photoluminescence of polyfluorene thin films: dependence on excitation wavelength, field strength, and temperature&#8221;, S. Mehata, C.-S. Hsu, <strong>Y.-P. Lee<\/strong>, and N. Ohta*, J. Phys. Chem. C <strong>113<\/strong>, 11907 (2009).<\/li>\n<li>&#8220;Comparison of geometric, electronic, and vibrational properties for all pentagon\/hexagon-bearing isomers of fullerenes C<sub>38<\/sub>, C<sub>40<\/sub>, and C<sub>42<\/sub>&#8220;, E. Malolepsza, <strong>Y.-P. Lee<\/strong>, H. A. Witek*, S. Irle, C.-F. Lin, and H.-M. Hsieh, Int. J. Quantum Chem. <strong>109<\/strong>, 1999 (2009).<\/li>\n<li>&#8220;Reaction dynamics of O(<sup>1<\/sup>D, <sup>3<\/sup>P) + OCS studied with time-resolved Fourier transform IR spectroscopy and quantum-chemical calculations&#8221;, -C. Chiang, N. S. Wang, S. Tsuchiya*, H.-T. Chen, <strong>Y.-P. Lee<\/strong>*, and M. C. Lin*, J. Phys. Chem. A <strong>113<\/strong>, 13260 (2009).<\/li>\n<li>&#8220;Infrared absorption of GeNNO isolated in solid Ar&#8221;, -M. Jiang, J. Glatthaar, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>131<\/strong>, 144504 (2009).<\/li>\n<li>&#8220;Transient infrared absorption of <em>t<\/em>-CH<sub>3<\/sub>C(O)OO, <em>c-<\/em>CH<sub>3<\/sub>C(O)OO, and \u03b1-lactone recorded in gaseous reactions of CH<sub>3<\/sub>CO and O<sub>2<\/sub>&#8220;, S.-Y. Chen and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>132<\/strong>, 114303 (2010).<\/li>\n<li>&#8220;Diminished cage effect in solid <em>p<\/em>-H<sub>2<\/sub>: infrared spectra of ClSCS, ClCS, and ClSC in an irradiated <em>p<\/em>-H<sub>2<\/sub> matrix containing Cl<sub>2<\/sub> and CS<sub>2<\/sub>&#8220;, C.-W. Huang, -C. Lee, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>132<\/strong>, 164303 (2010).<\/li>\n<li>&#8220;Electric-field-induced enhancement\/quenching of photoluminescence of \u03c0-conjugated polymer S3-PPV: excitation energy dependence&#8221;, M. S. Mehata, C.-S. Hsu, <strong>Y.-P. Lee<\/strong>, and Ohta*, J. Phys. Chem. B <strong>114<\/strong>, 6258 (2010).<\/li>\n<li>&#8220;Advances in use of <em>p<\/em>-H<sub>2<\/sub> as a novel host for matrix IR spectroscopy&#8221;, M. Bahou, C.-W. Huang, Y.-L. Huang, Glatthaar, and <strong>Y.-P. Lee<\/strong>*, J. Chin. Chem. Soc. <strong>57<\/strong>, 771 (2010).<\/li>\n<li>&#8220;Ordering, interaction and reactivity of the low-lying n\u03c0* and \u03c0\u03c0* excited triplet states of acetophenones**&#8221;, S. Yabumoto, S. Shigeto, <strong>Y.-P. Lee<\/strong>, and H.-o Hamaguchi*, Angew. Chem. Int. Ed. <strong>49<\/strong>, 9201 (2010).<\/li>\n<li>&#8220;Theoretical interpretation of the UV\u2013Vis spectrum of the CS<sub>2<\/sub>\/Cl complex in the spectral region 320\u2013550 nm&#8221;, C. Camacho, C.-W. Cheng, H. Witek*, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>114<\/strong>, 11008 (2010).<\/li>\n<li>&#8220;Diminished cage effect in solid <em>p<\/em>-H<sub>2<\/sub>: Infrared absorption of CH<sub>3<\/sub>S observed from photolysis in situ of CH<sub>3<\/sub>SH, CH<sub>3<\/sub>SCH<sub>3<\/sub> or CH<sub>3<\/sub>SSCH<sub>3<\/sub> isolated in <em>p<\/em>-H<sub>2<\/sub> matrices&#8221;, M. Bahou and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>133<\/strong>, 164316 (2010).<\/li>\n<li>&#8220;Transient infrared spectra of CH<sub>3<\/sub>SOO and CH<sub>3<\/sub>SO observed with a step-scan Fourier-transform spectrometer&#8221;, L.-K. Chu and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>133<\/strong>, 184303 (2010).<\/li>\n<li>&#8220;Site-selective reaction of Cl + propene in solid <em>para<\/em>-hydrogen: exclusive formation of 2-chloropropyl radicals&#8221;, J. Amicangelo and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. Lett. <strong>1<\/strong>, 2956 (2010).<\/li>\n<li>&#8220;Synthesis and electron-transfer properties of benzimidazole-functionalized ruthenium complexes for highly efficient dye-sensitized solar cells&#8221;, W.-K. Huang, C.-W. Cheng, S.-M. Chang, <strong>Y.-P. Lee<\/strong>, and Eric Diau*, Chem. Comm. <strong>46<\/strong>, 8992 (2010).<\/li>\n<\/ol>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-7sn7wx-1-4-624478814af7adf64cefbebd9aea7fab'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-5' data-fake-id='#toggle-id-5' class='toggler  av-title-above av-inherit-border-color'  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-5' data-slide-speed=\"200\" data-title=\"2001-2005\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2001-2005\" data-aria_expanded=\"Click to collapse: 2001-2005\">2001-2005<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-5' aria-labelledby='toggle-toggle-id-5' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color av-inherit-border-color'  itemprop=\"text\" ><ol>\n<li>&#8220;I. Three-center versus four-center HCl-elimination in photolysis of vinyl chloride at 193 nm: Bimodal rotational distribution of HCl (<em>v<\/em>\u00a37) detected with time-resolved Fourier-transform spectroscopy&#8221;, S.-R. Lin, S.-C. Lin, Y.-C. Lee, Y.-C. Chou, I-C. Chen, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>114<\/strong>, 160 (2001).<\/li>\n<li>&#8220;Detection of ClCO with time-resolved Fourier-transform infrared absorption spectroscopy&#8221;, S.-H. Chen, L.-K. Chu, Y.-J. Chen, I-C. Chen, and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>333<\/strong>, 365 (2001).<\/li>\n<li>&#8220;Formation of CH<sub>3<\/sub>CFCl<sup>+<\/sup> from photoionization of CH<sub>3<\/sub>CFCl<sub>2<\/sub>: An application of threshold photoelectron photoion coincidence (TPEPICO) technique&#8221;, S.-Y. Chiang, Y.-C. Lee, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A<strong> 105<\/strong>, 1226 (2001).<\/li>\n<li>&#8220;Ultraviolet absorption spectrum of cyclic CS<sub>2<\/sub> in solid Ar&#8221;, W.-J. Lo and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>336<\/strong>, 71 (2001).<\/li>\n<li>&#8220;Three-center versus four-center elimination in photolysis of vinyl fluoride and vinyl bromide at 193 nm: Bimodal rotational distribution of HF and HBr (<em>v<\/em>\u00a35) detected with time-resolved Fourier-transform spectroscopy&#8221;, S.-R. Lin, S.-C. Lin, Y.-C. Lee, Y.-C. Chou, I-C. Chen, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>114<\/strong>, 7396 (2001).<\/li>\n<li>&#8220;Enhancement of deuterated ethane on Jupiter&#8221;, A. Y. T. Lee, Y. L. Yung, B.-M. Cheng, M. Bahou, C.-Y. Chung, and <strong>Y.-P. Lee<\/strong>, Astrophys. J. <strong>551<\/strong>, L93 (2001).<\/li>\n<li>&#8220;Photodissociation thresholds of OH produced from CH<sub>3<\/sub>OH in solild Ne and Ar&#8221;, B.-M. Cheng, C.-P. Liu, W.-J. Lo, and <strong>Y.-P. Lee<\/strong>, Nuclear Instru. Methods Phys. Res. A <strong>467-468<\/strong>, 1461 (2001).<\/li>\n<li>&#8220;Temperature dependence of absorption cross-section of H<sub>2<\/sub>O, HOD, and D<sub>2<\/sub>O in the spectral region 140-193 nm&#8221;, C.-Y. Chung, E. P. Chew, B.-M. Cheng, M. Bahou, and <strong>Y.-P. Lee<\/strong>, Nuclear Instru. Methods Phys. Res. A <strong>467-468<\/strong>, 1572 (2001).<\/li>\n<li>&#8220;Absorption cross sections of HCl and DCl in 135-232 nm: Implications for photodissociation on Venus&#8221;, M. Bahou, C.-Y. Chung, <strong>Y.-P. Lee<\/strong>, B.-M. Cheng, Y. L. Yung, and L. C. Lee, Astrophys. J. <strong>559<\/strong>, L179 (2001).<\/li>\n<li>&#8220;Observation of CH<sub>4<\/sub> (<em>v<\/em><sub>2 <\/sub>= 1 or <em>v<\/em><sub>4 <\/sub>= 1) in the reaction Cl+CH<sub>4<\/sub> with time-resolved Fourier-transform infrared absorption spectroscopy&#8221;, Y.-J. Chen, L.-K. Chu, S.-R. Lin, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>115<\/strong>, 6513 (2001).<\/li>\n<li>&#8220;Photodissociation of glycidyl azide polymer with a Nd:YAG laser at 1.064 <em>\u03bc<\/em>m &#8220;, A. Kumar, <strong>Y.-P. Lee<\/strong>, and D.-M. Chen, Combust. Flame <strong>126<\/strong>, 1736 (2001).<\/li>\n<li>&#8220;Isomers of SNO<sub>2<\/sub>: Production and infrared spectra of <em>cis<\/em>&#8211; and <em>trans<\/em>-OSNO from irradiated inert matrices containing OCS and NO<sub>2<\/sub>&#8220;, M. Bahou and <strong>Y.-P. Lee<\/strong> J. Chem. Phys. <strong>115<\/strong>. 10694 (2001).<\/li>\n<li>&#8220;Theoretical calculations and infrared absorption spectra of <em>ap-<\/em> and <em>sp-<\/em>methyl vinyl ketone in Solid Ar&#8221;, K. Sankaran and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>106<\/strong>, 1190 (2002).<\/li>\n<li>&#8220;Experimental and theoretical studies on VUV absorption cross sections and photodissociation of CH<sub>3<\/sub>OH, CH<sub>3<\/sub>OD, CD<sub>3<\/sub>OH, and CD<sub>3<\/sub>OD&#8221;, B.-M. Cheng, M. Bahou, W.-C. Chen, C.-H. Yu, <strong>Y.-P. Lee<\/strong>, and L. C. Lee, J. Chem. Phys. <strong>117<\/strong>, 1633 (2002).<\/li>\n<li>&#8220;Quantitative spectral analysis of HCl and DCl in 120-220 nm: Effects of singlet-triplet mixing&#8221;, B.-M. Cheng, C.-Y. Chung, M. Bahou, <strong>Y.-P. Lee<\/strong>, and L. C. Lee, J. Chem. Phys. <strong>117<\/strong>, 4293 (2002).<\/li>\n<li>&#8220;Experimental and theoretical studies on Rydberg states of CH<sub>2<\/sub>CO in the region 120-220 nm&#8221;, S.-Y. Chiang, M. Bahou, Y.-J. Wu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>117<\/strong>, 4306 (2002).<\/li>\n<li>&#8220;Infrared spectra of CO in absorption and evaluation of radial functions for potential energy and electric dipolar moment&#8221;, J. F. Ogilvie, S.-L. Cheah, <strong>Y.-P. Lee<\/strong>, and S. P. A. Sauer, Theor. Chem. Acc. <strong>108<\/strong>, 85 (2002).<\/li>\n<li>&#8220;Two-color resonant four-wave mixing spectroscopy of the X <sup>1<\/sup>A<sub>1<\/sub> (5 0 0) state of SO<sub>2<\/sub> in a supersonic jet&#8221;, Y. Matsuda and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>362<\/strong>, 235 (2002).<\/li>\n<li>&#8220;Thermal analysis and PLIF imaging of reacting flow behind a disc stabilizer with a central fuel jet&#8221;, J.-T. Yang, C.-C. Chang, K.-L. Pan, Y.-P. Kang, and <strong>Y.-P. Lee<\/strong>, Combust. Sci. Tech. <strong>174<\/strong>, 71 (2002).<\/li>\n<li>&#8220;Nonresonant two-photon mass analyzed threshold ionization and zero kinetic energy photoelectron investigation of theground state of CH<sub>2<\/sub>CO<sup>+<\/sup> and CD<sub>2<\/sub>CO<sup>+<\/sup>&#8220;, S. Wang, Y. Shi, Z. J. Jakubek, M. Barnett, B. Simard, K. M\u00fcller-Dethlefs, C.-P. Liu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>117<\/strong>, 6546 (2002).<\/li>\n<li>&#8220;Isomers of S<sub>2<\/sub>O: IR absorption spectra of cyclic S<sub>2<\/sub>O in solid Ar&#8221;, W.-J. Lo, Y.-J. Wu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>117<\/strong>, 6655 (2002).<\/li>\n<li>&#8220;Experimental and theoretical studies of rate coefficients of the reaction O(<sup>3<\/sup>P) + HCl at high temperatures&#8221;, C.-C. Hsiao, <strong>Y.-P. Lee<\/strong>, N. S. Wang, J. H. Wang, and M. C. Lin, J. Phys. Chem. A <strong>106<\/strong>, 10231 (2002).<\/li>\n<li>&#8220;Absorption cross sections and solar photodissociation rate of deuterated isotopomers of methanol&#8221;, B.-M. Cheng, M. Bahou, <strong>Y.-P. Lee<\/strong>, and L. C. Lee, J. Geophys. Res.-Space Phys. <strong>107<\/strong>, SIA 7-1 (2002).<\/li>\n<li>&#8220;Three-center versus four-center elimination of haloethene: internal energies of HCl and HF on photolysis of CF<sub>2<\/sub>CHCl at 193 nm determined with time-resolved Fourier-transform spectroscopy&#8221;, C.-Y. Wu, C.-Y. Chung, Y.-C. Lee, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>117<\/strong>, 9785 (2002).<\/li>\n<li>&#8220;The matrix isolation spectrum of the ion&#8221;, P. R. Bunker, W. P. Kraemer, P. Jensen, Y.-C. Lee, and <strong>Y.-P. Lee<\/strong>, J. Mol. Spectrosc. <strong>216<\/strong>, 419 (2002).<\/li>\n<li>&#8220;Dissociative photoionization of CH<sub>2<\/sub>Cl<sub>2<\/sub> and enthalpy of formation of CHCl<sup>+<\/sup>: Experiments and calculations&#8221;, S.-Y. Chiang, M. Bahou, K. Sankaran, <strong>Y.-P. Lee<\/strong>, H.-F. Lu, and M.-D. Su, J. Chem. Phys. <strong>118<\/strong>, 62 (2003).<\/li>\n<li>&#8220;Photolysis of oxalyl chloride (ClCO)<sub>2<\/sub> at 248 nm: Emission of CO (<em>v<\/em>&#8216; \u00a3 3, <em>J<\/em>&#8216; \u00a3 51) detected with time-resolved Fourier-transform spectroscopy&#8221;, C.-Y. Wu, <strong>Y.-P. Lee<\/strong>, J. F. Ogilvie, and N. S. Wang, J. Phys. Chem. A <strong>107<\/strong>, 2389 (2003).<\/li>\n<li>&#8220;Strengths of absorption features in vibration-rotational band <em>v<\/em> = 6 \u2190 <em>v<\/em> = 0 of <sup>14<\/sup>N<sup>16<\/sup>O X <sup>2<\/sup>\u03a0<sub>r<\/sub> in the near infrared region&#8221;, <strong>Y.-P. Lee<\/strong>, S.-L. Cheah, and J. F. Ogilvie, Infrared Phys. Tech. <strong>44<\/strong>, 199 (2003).<\/li>\n<li>&#8220;State-resolved dynamics of photofragmentation&#8221;, Y.-P. Lee, Annu. Rev. Phys. Chem. <strong>54<\/strong>, 215 (2003).<\/li>\n<li>&#8220;Isomers of Ge<sub>2<\/sub>N<sub>2<\/sub>: Production and IR absorption of GeNNGe in solid N<sub>2<\/sub>&#8220;, M. Bahou, K. Sankaran, Y.-J. Wu, <strong>Y.-P. Lee<\/strong>, D. Rayner, and B. Simard, J. Chem. Phys. <strong>118<\/strong>, 9710 (2003).<\/li>\n<li>&#8220;Reaction dynamics of Cl + H<sub>2<\/sub>S: Rotational and vibrational distribution of HCl probed with time-resolved Fourier-transform spectroscopy&#8221;, K.-S. Chen, S.-S. Cheng, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>119<\/strong>, 4229 (2003).<\/li>\n<li>&#8220;Ultraviolet absorption spectrum of cyclic S<sub>2<\/sub>O in solid Ar&#8221;, W.-J. Lo, Y.-J. Wu, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>107<\/strong>, 6944 (2003).<\/li>\n<li>&#8220;Investigation of some Rydberg states of ketene by two-photon resonance-enhanced multiphoton-ionization spectroscopy&#8221;, S. Wang, Y. Shi, S. D\u00e9nomm\u00e9e, B. Simard, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>119<\/strong>, 7772 (2003).<\/li>\n<li>&#8220;Highly predissociative levels of CH<sub>3<\/sub>S (<em>A<\/em> <sup>2<\/sup><em>A<\/em><sub>1<\/sub>) detected with degenerate four-wave mixing&#8221;, C.-P. Liu, Y. Matsuda, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>119<\/strong>, 12335 (2003).<\/li>\n<li>&#8220;Experiments and calculations on rate coefficients for pyrolysis of SO<sub>2<\/sub> and the reaction O + SO at high temperatures&#8221; by C.-W. Lu, Y.-J. Wu, <strong>Y.-P. Lee<\/strong>, R. S. Zhu, and M. C. Lin, J. Phys. Chem. A <strong>107<\/strong>, 11020 (2003).<\/li>\n<li>&#8220;Quantitative spectroscopic and theoretical study of the optical absorption spectra of H<sub>2<\/sub>O, HOD, and D<sub>2<\/sub>O in the 125-145 nm region&#8221;, B.-M. Cheng, C.-Y. Chung, M. Bahou, <strong>Y.-P. Lee<\/strong>, L. C. Lee, R. Harrevelt, and M. C. Hemert, J. Chem. Phys. <strong>120<\/strong>, 224 (2004).<\/li>\n<li>&#8220;Infrared matrix-isolation spectroscopy using pulsed deposition of <em>p<\/em>-H<sub>2<\/sub>&#8220;, Y.-J. Wu, X. Yang, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>120<\/strong>, 1168 (2004).<\/li>\n<li>&#8220;Reaction dynamics of Cl + CH<sub>3<\/sub>SH: Rotational and vibrational distributions of HCl probed with time-resolved Fourier-transform spectroscopy&#8221;, S.-S. Cheng, Y.-J. Wu, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>120<\/strong>, 1792 (2004).<\/li>\n<li>&#8220;Detection of ClSO with time-resolved Fourier-transform infrared absorption spectroscopy&#8221;, L.-K. Chu and <strong>Y.-P. Lee<\/strong>*, Chem. Phys. <strong>120<\/strong>, 3179 (2004).<\/li>\n<li>&#8220;Experimental and <em>ab initio<\/em> studies of photoionization and dissociative photoionization of CH<sub>2<\/sub>Br<sub>2<\/sub>&#8220;, S.-Y. Chiang*, Y.-S. Fang, K. Sankaran, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>120<\/strong>, 3270 (2004).<\/li>\n<li>&#8220;Isomers of HSCO: IR absorption spectra of <em>t<\/em>-HSCO in solid Ar&#8221;, W.-J. Lo, H.-F. Chen, Y.-J. Wu, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>120<\/strong>, 5717 (2004).<\/li>\n<li>&#8220;Photolysis of oxalyl chloride (ClCO)<sub>2<\/sub> at 193 nm : Emission of CO(<em>v<\/em> \u00a3 6, <em>J<\/em> \u00a3 60) detected with time-resolved Fourier-transform spectroscopy&#8221;, C.-Y. Wu,<strong> Y.-P. Lee<\/strong>*, and N. S. Wang, J. Chem. Phys. <strong>120<\/strong>, 6957 (2004).<\/li>\n<li>&#8220;Infrared cavity ringdown spectroscopy of jet-cooled polycyclic aromatic hydrocarbons&#8221;, A. J. Huneycutt, R. N. Casaes, B. J. McCall, C.-Y. Chung, <strong>Y.-P. Lee<\/strong>, and R.-J. Saykally*, ChemPhysChem <strong>5<\/strong>, 321 (2004).<\/li>\n<li>&#8220;Experimental and theoretical investigations of rate coefficients of the reaction S(<sup>3<\/sup>P) + O<sub>2<\/sub> in the temperature range 298-878 K&#8221;, C.-W. Lu, Y.-J. Wu, <strong>Y.-P. Lee<\/strong>*, R. S. Zhu, and M. C. Lin*, J. Chem. Phys. <strong>121<\/strong>, 8271 (2004).<\/li>\n<li>&#8220;Molecular elimination in photolysis of fluorobenzene at 193 nm: Internal energy of HF determined with time-resolved Fourier-transform spectroscopy&#8221;, C.-Y. Wu, Y.-J. Wu, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>121<\/strong>, 8792 (2004).<\/li>\n<li>&#8220;Isomers of OCS<sub>2<\/sub>: IR absorption spectra of OSCS and O(CS<sub>2<\/sub>) in solid Ar&#8221;, W.-J. Lo, H.-F. Chen, P.-H. Chou, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>121<\/strong>, 12371 (2004).<\/li>\n<li>&#8220;Photodissociation dynamics of vinyl chloride investigated with a pulsed slit-jet and time-resolved Fourier-transform spectroscopy&#8221;, Bahou and <strong>Y.-P. Lee<\/strong>*, Aus. J. Chem. <strong>57<\/strong>, 1161 (2004).<\/li>\n<li>&#8220;Two-color resonant four-wave spectroscopy of highly predissociated levels in the <em>\u00c3<\/em> <sup>2<\/sup>A<sub>1<\/sub> state of CH<sub>3<\/sub>S&#8221;, C.-P. Liu, S. A. Reid, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>122<\/strong>, 124313 (2005).<\/li>\n<li>&#8220;Experimental and theoretical studies of rate coefficients for the reaction O(<sup>3<\/sup>P) + CH<sub>3<\/sub>OH at high temperatures&#8221;, C.-W. Lu, S.-L. Chou, <strong>Y.-P. Lee<\/strong>*, S. Xu, Z. F. Xu, and M. C. Lin*, J. Chem. Phys. <strong>122<\/strong>, 244314 (2005).<\/li>\n<li>&#8220;Preparation and spectral characterization of novel species in matrices&#8221;, <strong>Y.-P. Lee<\/strong>*, J. Chin. Chem. Soc. <strong>52<\/strong>, 641 (2005).<\/li>\n<li>&#8220;Isomers of GeNO and Ge(NO)<sub>2<\/sub>: Production and infrared absorption of GeNO and ONGeNO in solid Ar&#8221;, -B. Chou, M. Bahou, <strong>Y.-P. Lee<\/strong>*, D. Rayner, and B. Simard, J. Chem. Phys. <strong>123<\/strong>, 054321 (2005).<\/li>\n<li>&#8220;Photodissociation dynamics of formyl fluoride (HFCO) at 193 nm: Branching ratios and distributions of kinetic energy&#8221;, S.-H. Lee*, C.-Y. Wu, S.-K. Yang , and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>123<\/strong>, 074326 (2005).<\/li>\n<li>&#8220;Isomers of NCO<sub>2<\/sub>: IR absorption spectra of ONCO in solid Ne&#8221;, Y.-J. Wu and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>123<\/strong>, 174301 (2005).<\/li>\n<li>&#8220;Detection of vibration-rotational band 5 \u2013 0 of <sup>12<\/sup>C<sup>16<\/sup>O X <sup>1<\/sup>\u03a3<sup>+<\/sup> with cavity ringdown absorption near 0.96 <em>\u03bc<\/em>m&#8221;, C.-Y. Chung, J. F. Ogilvie, and <strong>Y.-P. Lee<\/strong>*, J. Phys. Chem. A <strong>109<\/strong>, 7854 (2005).<\/li>\n<li>&#8220;Molecular elimination in photolysis of <em>o<\/em>&#8211; and <em>p<\/em>-fluorotoluene at 193 nm: Internal energy of HF determined with time-resolved Fourier-transform spectroscopy&#8221;, S.-K. Yang, S.-Y. Liu, H.-F. Chen, and <strong>Y.-P. Lee<\/strong>*, J. Chem. Phys. <strong>123<\/strong>, 224304 (2005).<\/li>\n<\/ol>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-7sn7wx-1-3-d0943d00a5d365a908af073d056c3394'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-6' data-fake-id='#toggle-id-6' class='toggler  av-title-above av-inherit-border-color'  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-6' data-slide-speed=\"200\" data-title=\"1996-2000\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 1996-2000\" data-aria_expanded=\"Click to collapse: 1996-2000\">1996-2000<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-6' aria-labelledby='toggle-toggle-id-6' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color av-inherit-border-color'  itemprop=\"text\" ><ol>\n<li>&#8220;Infrared absorption of <em>cyclic<\/em> and <em>trans<\/em>-NaNO<sub>2<\/sub> and KNO<sub>2<\/sub> in solid argon&#8221;, W.-J. Lo, M.-Y. Shen, C.-H. Yu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>104<\/strong>, 935 (1996).<\/li>\n<li>&#8220;Laser-induced fluorescence and phosphorescence of C<sub>60<\/sub> isolated in solid Ne&#8221;, W.-C. Hung, C.-D. Ho, C.-P. Liu, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. <strong>100<\/strong>, 3927 (1996).<\/li>\n<li>&#8220;Isomers of SO<sub>3<\/sub>: Infrared absorption of OSOO in solid argon&#8221;, S.-H. Jou, M.-Y. Shen, C.-H. Yu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>104<\/strong>, 5745 (1996).<\/li>\n<li>&#8220;Vibronic analysis of the laser-induced fluorescence of jet-cooled C<sub>2<\/sub>H<sub>5<\/sub>S&#8221;, W.-C. Hung, M.-Y. Shen, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>105<\/strong>, 5722 (1996).<\/li>\n<li>&#8220;Photoionization spectra and ionization thresholds of CH<sub>3<\/sub>SO, CH<sub>3<\/sub>SOH, and CH<sub>3<\/sub>SS(O)CH<sub>3<\/sub>&#8220;, W.-C. Hung, M.-Y. Shen, <strong>Y.-P. Lee<\/strong>, N.-S. Wang, and B.-M. Cheng, J. Chem. Phys. <strong>105<\/strong>, 7402 (1996).<\/li>\n<li>&#8220;Isomers of SO<sub>2<\/sub>: Infrared absorption of SOO in solid argon&#8221;, L.-S. Chen, C.-I Lee, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>105<\/strong>, 9454 (1996).<\/li>\n<li>&#8220;Spectra of the vibronic transition <em>A<\/em><em>-X <\/em>of in solid neon&#8221;, C.-C. Zen, <strong>Y.-P. Lee<\/strong>, and J. F. Ogilvie, Spectrochimica Acta <strong>A52<\/strong>, 1727 (1996).<\/li>\n<li>&#8220;Effect of polarization on stimulated emission pumping spectroscopy of the system of jet-cooled Br<sub>2<\/sub> via two-color resonant four-wave mixing&#8221;, A. Kumar, W.-C. Hung, C.-C. Hsiao, and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>269<\/strong>, 22 (1997).<\/li>\n<li>&#8220;IR spectra and vibrational analysis of isotopic KNO<sub>3<\/sub> in solid Ar&#8221;, W.-J. Lo, M.-Y. Shen, C.-H. Yu, and <strong>Y.-P. Lee<\/strong>, J. Mol. Spectrosc. <strong>183<\/strong>, 119 (1997).<\/li>\n<li>&#8220;Laser-photolysis\/time-resolved Fourier-transform absorption spectroscopy: Formation and quenching of HCl(<em>v<\/em>) in the chain reaction Cl\/Cl<sub>2<\/sub>\/H<sub>2<\/sub>&#8220;, J. Eberhard, P.-S. Yeh, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>107<\/strong>, 6499 (1997).<\/li>\n<li>&#8220;Valence-level photoemission spectroscopy and photon-stimulated ion desorption studies of CH<sub>3<\/sub>Cl adsorbed on Al(111) surface using synchrotron radiation&#8221;, S.-C. Yang, J.-M. Chen, C.-R. Wen, Y.-J. Hsu, <strong>Y.-P. Lee<\/strong>, T.-J. Chuang, and Y.-C. Liu, Surf. Sci. <strong>385<\/strong>, L1010 (1997).<\/li>\n<li>&#8220;Photoionization efficiency spectrum and ionization energy of C<sub>2<\/sub>H<sub>5<\/sub>SO&#8221;, B.-M. Cheng, W.-C. Hung, W.-C. Chen, C.-H. Yu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>107<\/strong>, 8794 (1997).<\/li>\n<li>&#8220;Photoionization spectra and ionization energies of HSCl, HSSSH, SSCl and HSSCl formed in the reaction system Cl\/Cl<sub>2<\/sub>\/H<sub>2<\/sub>S&#8221;, J. Eberhard, W.-C. Chen, C.-H. Yu, <strong>Y.-P. Lee<\/strong>, and B.-M. Cheng, J. Chem. Phys. <strong>108<\/strong>, 6197 (1998).<\/li>\n<li>&#8220;Absorption and fluorescence of the of OClO in solid Ne, Ar, and Kr. I. Vibrationally unrelaxed \u00a0emission&#8221;, C.-P. Liu, L.-H. Lai, Y.-Y. Lee, S.-C. Hung, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>109<\/strong>, 978 (1998).<\/li>\n<li>&#8220;Laser photolysis of OClO in solid Ne, Ar, and Kr. II. Site specificity, mode specificity, and effects of matrix hosts&#8221;, L.-H. Lai, C.-P. Liu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>109<\/strong>, 988 (1998).<\/li>\n<li>&#8220;Highly predissociative levels of CH <em>B<\/em> <sup>2<\/sup>\u00e5<sup>&#8211;<\/sup> state detected with two-color resonant four-wave mixing spectroscopy&#8221;, A. Kumar, W.-C. Hung, C.-C. Hsiao, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>109<\/strong>, 3824 (1998).<\/li>\n<li>&#8220;Photoionization studies of sulfur radicals and products of their reactions&#8221;, B.-M. Cheng, E. P. Chew, W.-C. Hung, J. Eberhard, and <strong>Y.-P. Lee<\/strong>, J. Synchrotron Rad. <strong>5<\/strong>, 1041 (1998).<\/li>\n<li>&#8220;Adsorption and photon-stimulated desorption of CCl<sub>4<\/sub> on an Al(111) surface investigated with synchrotron radiation&#8221;, J.-M. Chen, R.-G. Liu, Y.-J. Hsu, S.-C. Yang, Y.-C. Liu, <strong>Y.-P. Lee<\/strong>, C.-R. Wen, and T. J. Chuang, J. Chem. Phys. <strong>109<\/strong>, 8027 (1998).<\/li>\n<li>&#8220;Observation of saturation dip in degenerate four-wave mixing and two-color resonant four-wave mixing spectra of jet-cooled CH&#8221;, A. Kumar, C.-C. Hsiao, Y.-Y. Lee, and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>297<\/strong>, 300 (1998)<\/li>\n<li>&#8220;Isomers of N<sub>2<\/sub>O<sub>3<\/sub>: Observation of <em>trans-cis<\/em> N<sub>2<\/sub>O<sub>3<\/sub> in solid Ar&#8221;, C.-I Lee, <strong>Y.-P. Lee<\/strong>, X. Wang, and Q.-Z. Qin, J. Chem. Phys. <strong>109<\/strong>, 10446 (1998).<\/li>\n<li>&#8220;Two-color resonant four-wave mixing spectra of the band C<sup>2<\/sup>\u00e5<sup>+<\/sup> &#8211; X<sup>2<\/sup>P(1-1) of CH in a flame&#8221;, X. Li, A. Kumar, C.-C. Hsiao, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>103<\/strong>, 6162 (1999).<\/li>\n<li>&#8220;Highly predissociative levels of <em>D<\/em><sup>2<\/sup>P state of CH studied with two-color resonant four-wave mixing technique&#8221;, X. Li and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>111<\/strong>, 4942 (1999).<\/li>\n<li>&#8220;Photodissociation of 1,1-difluoroethene (CH<sub>2<\/sub>CF<sub>2<\/sub>) at 193 nm monitored with step-scan time-resolved Fourier-transform infrared emission spectroscopy&#8221;, S.-R. Lin and <strong>Y.-P. Lee<\/strong>, Chem. Phys. <strong>111<\/strong>, 9233 (1999).<\/li>\n<li>&#8220;Photo-induced fractionation of water isotopomers in the Martian atmosphere&#8221;, B.-M. Cheng, E. P. Chew, C.-P. Liu, M. Bahou,<strong> Y.-P. Lee<\/strong>, Y. L. Yung, and M. F. Gerstell, Geophys. Res. Lett. <strong>26<\/strong>, 3657 (1999).<\/li>\n<li>&#8220;Wavenumbers, strengths, widths and shifts with pressure of lines in four bands of <sup>16<\/sup>O<sub>2<\/sub> in the systems and &#8220;, S.-L. Cheah, <strong>Y.-P. Lee<\/strong>, and J. F. Ogilvie, J. Quant. Spectrosc. Radiative Transfer. <strong>64<\/strong>, 467 (2000).<\/li>\n<li>&#8220;Production and IR absorption of cyclic CS<sub>2<\/sub> in solid Ar&#8221;, M. Bahou, Y.-C. Lee, and<strong> Y.-P. Lee<\/strong>, J. Am. Chem. Soc. <strong>122<\/strong>, 661 (2000).<\/li>\n<li>&#8220;Laser-induced phosphorescence of SO<sub>2<\/sub>in solid neon: Direct observation of the <sub>\u00a0<\/sub>state in the <sup>16<\/sup>OS<sup>18<\/sup>O Molecule&#8221;, C.-C. Zen, I-C. Chen, <strong>Y.-P. Lee<\/strong>, and A. J. Merer, J. Phys. Chem. A <strong>104<\/strong>, 771 (2000).<\/li>\n<li>&#8220;Production and infrared absorption spectrum of ClSO<sub>2<\/sub> in matrices&#8221;, M. Bahou, S.-F. Chen, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>104<\/strong>, 3613 (2000).<\/li>\n<li>&#8220;Temperature dependence of rate coefficients of reactions of NO<sub>2<\/sub> with CH<sub>3<\/sub>S and C<sub>2<\/sub>H<sub>5<\/sub>S&#8221;, B.-F. Chang, T.-T. Wang, N.-S. Wang, Y.-L. Hwang, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>104<\/strong>, 5525 (2000).<\/li>\n<li>&#8220;The visible absorption spectrum of <sup>16<\/sup>OBr<sup>16<\/sup>O and <sup>18<\/sup>OBr<sup>18<\/sup>O isolated in solid Ne&#8221;, Y.-C. Lee and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. A <strong>104<\/strong>, 6951 (2000).<\/li>\n<\/ol>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-7sn7wx-1-2-8a3d802da732bdebb80f9132a5d7f3cc'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-7' data-fake-id='#toggle-id-7' class='toggler  av-title-above av-inherit-border-color'  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-7' data-slide-speed=\"200\" data-title=\"1991-1995\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 1991-1995\" data-aria_expanded=\"Click to collapse: 1991-1995\">1991-1995<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-7' aria-labelledby='toggle-toggle-id-7' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color av-inherit-border-color'  itemprop=\"text\" ><ol>\n<li>&#8220;Photolysis of nitric acid in solid argon: the infrared absorption of peroxynitrous acid (HOONO)&#8221;, B.-M. Cheng, J.-W. Lee, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. <strong>95<\/strong>, 2814 (1991).<\/li>\n<li>&#8220;Kinetics of the reaction OH + C<sub>2<\/sub>H<sub>4<\/sub> in He, N<sub>2<\/sub>, and O<sub>2<\/sub> at low pressure&#8221;, C.-H. Kuo and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. <strong>95<\/strong>, 1253 (1991).<\/li>\n<li>&#8220;Production and trapping of HOSO<sub>2<\/sub> from the gaseous reaction OH + SO<sub>2<\/sub>: the infrared absorption of HOSO<sub>2<\/sub> in solid argon&#8221;, Y.-P. Kuo, B.-M. Cheng, and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>177<\/strong>, 195 (1991).<\/li>\n<li>&#8220;Vibronic analysis of the laser-induced fluorescence of jet-cooled CH<sub>3<\/sub>S&#8221;, S.-Y. Chiang and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>95<\/strong>, 66 (1991).<\/li>\n<li>&#8220;Kinetics of the reactions of CS<sub>2<\/sub>OH with O<sub>2<\/sub>, NO, and NO<sub>2<\/sub>&#8220;, E. W.-G. Diau and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. <strong>95<\/strong>, 7726 (1991).<\/li>\n<li>&#8220;Detailed rate coefficients and the enthalpy change of the equilibrium reaction over the temperature range 544-673 K&#8221;, E. W.-G. Diau and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>96<\/strong>, 377 (1992).<\/li>\n<li>&#8220;Laser\u2010induced emission of SO in matrices: The\u00a0and the transitions&#8221;, C.-C. Zen, F.-T. Tang, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>96<\/strong>, 8054 (1992).<\/li>\n<li>&#8220;Intensities of lines in the band\u00a0<em>a<\/em><sup>1<\/sup>\u0394<em><sub>g<\/sub><\/em>(<em>v<\/em>\u2032= 0) \u2212\u00a0<em>X<\/em><sup>3<\/sup>\u03a3<sup>\u2212<\/sup><em><sub>g<\/sub><\/em>\u00a0(<em>v<\/em>\u2033 = 0) of <sup>16<\/sup>O<sub>2<\/sub>\u00a0in absorption&#8221;, Y.-T. Hsu, <strong>Y.-P. Lee<\/strong>, and J. F. Ogilvie, Spectrochimica Acta Part A: Molecular Spectroscopy, <strong>48<\/strong>, 1227 (1992).<\/li>\n<li>&#8220;The enthalpy change and the detailed rate coefficients of the equilibrium reaction over the temperature range 627-713 K&#8221;, L.-H. Lai, Y.-C. Hsu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>97<\/strong>, 3092 (1992).<\/li>\n<li>&#8220;Photolysis of nitric acid in solid nitrogen&#8221;, W.-J. Chen, W.-J. Lo, B.-M. Cheng, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>97<\/strong>, 7167 (1992).<\/li>\n<li>&#8220;Spectral and kinetic studies of free radicals of atmospheric interest&#8221;, <strong>Y.-P. Lee<\/strong>, J. Chin. Chem. Soc. <strong>39<\/strong>, 503 (1992). <strong>(invited paper)<\/strong><\/li>\n<li>&#8220;Spectroscopic studies of small radicals (CH<sub>3<\/sub>S)&#8221;, <strong>Y.-P. Lee<\/strong>, Proceedings of the Laser Techniques for State-Selected and State-to-State Chemistry, Los Angeles, California, SPIE Proceeding No.<strong> 1858<\/strong>, 44 (1993).<\/li>\n<li>&#8220;Infrared absorption of 2\u2010hydroxyethyl (HOCH<sub>2<\/sub>CH<sub>2<\/sub>) in solid Ar&#8221;, Y.-P. Kuo and<strong> Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>99<\/strong>, 3272 (1993).<\/li>\n<li>&#8220;Lifetimes and quenching of the fluorescence of HSO&#8221;, W.-C. Hung and <strong>Y.-P. Lee<\/strong>, J. Chin. Chem. Soc. <strong>40<\/strong>, 407 (1993).<\/li>\n<li>&#8220;Vibronic analysis of the laser-induced fluorescence of jet-cooled methoxy (CH<sub>3<\/sub>O) radical&#8221;, Y.-Y. Lee, G.-H. Wann, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>99<\/strong>, 9465 (1993).<\/li>\n<li>&#8220;Kinetics of the reaction of HSO with O<sub>3<\/sub> at temperatures 273-423 K&#8221;, Y.-Y. Lee, <strong>Y.-P. Lee<\/strong>, and N.-S. Wang, J. Chem. Phys. <strong>100<\/strong>, 387 (1994).<\/li>\n<li>&#8220;Application of the broad-band CARS to the temperature measurements of propellant flames&#8221;, <strong>Y.-P. Lee<\/strong> and D.-M. Chen, Proceedings of the Fourteenth International Conference on Flame Spectroscopy, Hong Kong, p. 426 (1994).<\/li>\n<li>&#8220;Detailed rate coefficients and the enthalpy change of the equilibrium reaction OH + C<sub>6<\/sub>H<sub>6<\/sub> + M HOC<sub>6<\/sub>H<sub>6<\/sub> + M over the temperature range 345-385 K&#8221;, S.-C. Lin, T.-C. Kuo, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>101<\/strong>, 2098 (1994).<\/li>\n<li>&#8220;Infrared absorption of <em>cis<\/em>&#8211;<em>cis<\/em> peroxynitrous acid (HOONO) in solid argon&#8221;, W.-J. Lo and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>101<\/strong>, 5494 (1994).<\/li>\n<li>&#8220;Ultraviolet absorption of cis-cis and trans-perp peroxynitrous acid (HOONO) in solid argon&#8221;, W.-J. Lo and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>229<\/strong>, 357 (1994).<\/li>\n<li>&#8220;Temperature dependence of the rate coefficient of the reaction OH + CF<sub>3<\/sub>CH<sub>2<\/sub>F over the range 255-424 K&#8221; G.-H. Leu and <strong>Y.-P. Lee<\/strong>, J. Chin. Chem. Soc. <strong>41<\/strong>, 645 (1994).<\/li>\n<li>&#8220;New spectral techniques: time-resolved Fourier-transform spectroscopy and two-color laser-induced grating spectroscopy&#8221;. <strong>Y.-P. Lee<\/strong>, P.-S. Yeh, G.-H. Leu, W-C Hung, S.-C. Hung, and I-C. Chen, J. Chin. Chem. Soc. <strong>42<\/strong>, 205 (1995). <strong>(invited paper)<\/strong><\/li>\n<li>&#8220;Infrared absorption of <em>cis<\/em>&#8211; and <em>trans-<\/em>alkali-metal peroxynitrites (MOONO, M=Li, Na, and K) in solid argon&#8221;, W.-J. Lo, <strong>Y.-P. Lee<\/strong>, J.-H. M. Tsai, H.-H. Tsai, T. P. Hamilton, J. G. Harrison, and J. S. Beckman, J. Chem. Phys. <strong>103<\/strong>, 4026 (1995).<\/li>\n<li>&#8220;Ultraviolet absorption of <em>cis<\/em> and <em>trans<\/em> potassium peroxynitrite (KOONO) in solid argon&#8221;, W.-J. Lo, <strong>Y.-P. Lee<\/strong>, J.-H. M. Tsai, and J. S. Beckman, Chem. Phys. Lett. <strong>242<\/strong>, 147 (1995).<\/li>\n<li>&#8220;Laser-induced fluorescence of the A <sup>2<\/sup>P<sub>u<\/sub> -X <sup>2<\/sup>P<sub>g<\/sub> transition of in solid Ne: reanalysis of vibronic spectra&#8221;, C.-C. Zen and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>244<\/strong>, 177 (1995).<\/li>\n<li>&#8220;Photodissociation of HNO<sub>3<\/sub> at 193 nm: Near-infrared emission of NO detected by time-resolved Fourier transform spectroscopy&#8221;, P.-S. Yeh, G.-H. Leu,<strong> Y.-P. Lee<\/strong>, and I-C. Chen, J. Chem. Phys. <strong>103<\/strong>, 4879 (1995).<\/li>\n<li>&#8220;Threshold and cage effect for photodissociation of H<sub>2<\/sub>O in solid Ne and Ar&#8221;, B.-M. Cheng, W.-J. Lo, L.-H. Lai, W.-C. Hung, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>103<\/strong>, 6303 (1995).<\/li>\n<li>&#8220;Detection of CH in an oxyacetylene flame using two-color resonant four-wave mixing technique&#8221;, W.-C. Hung, M.-L. Huang, Y.-C. Lee, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>103<\/strong>, 9941 (1995).<\/li>\n<\/ol>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-7sn7wx-1-1-b571933106f2e2dda0a4d181c586afae'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-8' data-fake-id='#toggle-id-8' class='toggler  av-title-above av-inherit-border-color'  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-8' data-slide-speed=\"200\" data-title=\"~1990\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: ~1990\" data-aria_expanded=\"Click to collapse: ~1990\">~1990<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-8' aria-labelledby='toggle-toggle-id-8' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color av-inherit-border-color'  itemprop=\"text\" ><ol>\n<li>&#8220;Chemiluminescence of SO in solid argon&#8221;, <strong>Y.-P. Lee<\/strong> and G. C. Pimentel, J. Chem. Phys. <strong>69<\/strong>, 3063 (1978).<\/li>\n<li>&#8220;Chemiluminescence of S<sub>2<\/sub> in solid argon&#8221;, <strong>Y.-P. Lee<\/strong> and G. C. Pimentel, J. Chem. Phys. <strong>70<\/strong>, 692 (1979).<\/li>\n<li>&#8220;Diatomic sulfur: low-lying bound molecular electronic states of S<sub>2<\/sub>&#8220;, W. C. Swope, <strong>Y.-P. Lee<\/strong>, and H. F. Schaefer III, J. Chem. Phys. <strong>70<\/strong>, 947 (1979).<\/li>\n<li>&#8220;Sulfur oxide: low-lying bound molecular electronic states of SO&#8221;, W. C. Swope, <strong>Y.-P. Lee<\/strong>, and H. F. Schaefer III, J. Chem. Phys. <strong>71<\/strong>, 3761 (1979).<\/li>\n<li>&#8220;Formic acid chemiluminescence from cryogenic reaction between triplet methylene and oxygen&#8221;, <strong>Y.-P. Lee<\/strong> and G. C. Pimentel, J. Chem. Phys. <strong>74<\/strong>, 4851 (1981).<\/li>\n<li>&#8220;Chemiluminescence of ethylene in an inert matrix and the probable infrared spectrum of methylene&#8221;, <strong>Y.-P. Lee<\/strong> and G. C. Pimentel, J. Chem. Phys. <strong>75<\/strong>, 4241 (1981).<\/li>\n<li>&#8220;The chemiluminescent reactions Ba + N<sub>2<\/sub>O and Ba + O<sub>3<\/sub> in solid argon&#8221;, S. R. Long, <strong>Y.-P. Lee<\/strong>, O. D. Krogh, and G. C. Pimentel, J. Chem. Phys. <strong>77<\/strong>, 226 (1982).<\/li>\n<li>&#8220;Laser magnetic resonance spectroscopy of ClO and kinetic studies of the reactions of ClO with NO and NO<sub>2<\/sub>&#8220;, <strong>Y.-P. Lee<\/strong>, R. M. Stimpfle, R. A. Perry, J. A. Mucha, K. M. Evenson, D. A. Jennings, and C. J. Howard, Int. J. Chem. Kinet. <strong>14<\/strong>, 711 (1982).<\/li>\n<li>&#8220;Temperature dependence of the rate constant and the branching ratio for the reaction Cl + HO<sub>2<\/sub>&#8220;, <strong>Y.-P. Lee<\/strong> and C. J. Howard, J. Chem. Phys. <strong>77<\/strong>, 756 (1982).<\/li>\n<li>&#8220;Absolute rate constant measurement of the reaction OH + H<sub>2<\/sub>S using discharge flow-resonance fluorescence technique&#8221;, N.-S. Wang and <strong>Y.-P. Lee<\/strong>, Proc. Natl. Sci. Counc. ROC(A) <strong>9<\/strong>, 87 (1985).<\/li>\n<li>&#8220;Chemiluminescence of CaO from the Ca + N<sub>2<\/sub>O and Ca + O<sub>3<\/sub> reactions in solid argon&#8221;, C.-S. Wei, S.-W. Guo, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>82<\/strong>, 2942 (1985).<\/li>\n<li>&#8220;Temperature dependence of the rate constant for the reaction OH + H<sub>2<\/sub>S in He, N<sub>2<\/sub>, and O<sub>2<\/sub>&#8220;, Y.-L. Lin, N.-S. Wang, and <strong>Y.-P. Lee<\/strong>, Int. J. Chem. Kinet. <strong>17<\/strong>, 1201 (1985).<\/li>\n<li>&#8220;Chemiluminescence of CaCl from the Ca + Cl<sub>2<\/sub> reaction in argon matrix&#8221;, S.-W. Guo, J.-W. Chang, and <strong>Y.-P. Lee<\/strong>, J. Chin. Chem. Soc. <strong>32<\/strong>, 215 (1985).<\/li>\n<li>&#8220;Rate constant of OH + OCS reaction over the temperature range 255-483 K&#8221;, B.-M. Cheng and <strong>Y.-P. Lee<\/strong>, Int. J. Chem. Kinet. <strong>18<\/strong>, 1303 (1986).<\/li>\n<li>&#8220;The C<sub>2<\/sub>N<sub>2<\/sub> chemiluminescence in matrices&#8221;, J.-W. Chang and <strong>Y.-P. Lee<\/strong>, J. Mol. Struct. <strong>157<\/strong>, 155 (1987).<\/li>\n<li>&#8220;The <em>S<\/em><sub>21<\/sub> lines of the <em>A <\/em><sup>2<\/sup>\u00e5<sup>+ <\/sup>(<em>v<\/em>\u00a2 = 1) \u00ac <em>X <\/em><sup>2<\/sup><em>P<\/em> (<em>v<\/em>\u00b2 = 0) transition of OH and OD&#8221;, S.-R. Lin, S.-T. Lee, and <strong>Y.-P. Lee<\/strong>, J. Quant. Spectrosc. Rad. Trans. <strong>38<\/strong>, 163 (1987).<\/li>\n<li>&#8220;Rate constant for the reaction of OH radical with dimethyl sulfide&#8221;, Y.-C. Hsu, D.-S. Chen, and <strong>Y.-P. Lee<\/strong>, Int. J. Chem. Kinet. <strong>19<\/strong>, 1073 (1987).<\/li>\n<li>&#8220;Product determination of gaseous radical reactions using matrix isolation-FTIR detection&#8221;, Y.-P. Kuo, S.-S. Ju, and <strong>Y.-P. Lee<\/strong>, J. Chin. Chem. Soc. <strong>34<\/strong>, 161 (1987).<\/li>\n<li>&#8220;Radiative lifetime and quenching of the state of CH<sub>3<\/sub>O radical&#8221;, S.-R. Lin, J.-B. Nee, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>88<\/strong>, 171 (1988).<\/li>\n<li>&#8220;Linestrengths of the band of <sup>16<\/sup>O<sub>2<\/sub>&#8220;, L.-B. Lin, <strong>Y.-P. Lee<\/strong>, and J. F. Ogilvie, J. Quant. Spectrosc. Rad. Trans. <strong>39<\/strong>, 375 (1988).<\/li>\n<li>&#8220;Application of the linear prediction <em>z<\/em>-transform and auto-regression to FTIR spectral analysis&#8221;,<strong> Y.-P. Lee<\/strong> and D.-S. Chen, Microchim. Acta <strong>94<\/strong>, 85 (1988).<\/li>\n<li>&#8220;Red and near-infrared laser-induced emission of S<sub>2<\/sub> in an Ar matrix&#8221;, S.-Y. Chiang and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>89<\/strong>, 13 (1988).<\/li>\n<li>&#8220;The infrared absorption spectrum of hydroxyl radicals in solid argon&#8221;, B.-M. Cheng, J. F. Ogilvie, and <strong>Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>151<\/strong>, 109 (1988).<\/li>\n<li>&#8220;Strengths of absorption lines in the vibration-rotational band <em>v<\/em> = 5 \u00ac <em>v<\/em> = 0 of NO <em>X <\/em><sup>2<\/sup><em>P<\/em><em><sub>r<\/sub><\/em> &#8220;,<strong> Y.-P. Lee<\/strong> and J. F. Ogilvie, Infrared Phys. <strong>28<\/strong>, 321 (1988).<\/li>\n<li>&#8220;Laser-induced emission of CH<sub>3<\/sub>O in solid argon&#8221;, S.-Y. Chiang, Y.-C. Hsu, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>90<\/strong>, 81 (1989).<\/li>\n<li>&#8220;Production and trapping of gaseous dimeric ClO: The infrared spectrum of chlorine peroxide (ClOOCl) in solid argon&#8221;, B.-M. Cheng and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>90<\/strong>, 5930 (1989).<\/li>\n<li>&#8220;Linestrengths in the 3\u20130 vibration-rotational band of gaseous <sup>1<\/sup>H<sup>35<\/sup>Cl and the electric dipole moment function&#8221;, J. F. Ogilvie and<strong> Y.-P. Lee<\/strong>, Chem. Phys. Lett. <strong>159<\/strong>, 239 (1989).<\/li>\n<li>&#8220;Kinetics of the reaction of OH + SO<sub>2<\/sub> in He, N<sub>2<\/sub>, and O<sub>2<\/sub> low pressure&#8221;, Y.-Y. Lee, W.-C. Kao, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. <strong>94<\/strong>, 4535 (1990).<\/li>\n<li>&#8220;Kinetics of the reaction OH + NH<sub>3<\/sub> in the range 273 &#8211; 433 K&#8221;, W.-K. Diau, T.-L. Tso, and <strong>Y.-P. Lee<\/strong>, J. Phys. Chem. <strong>94<\/strong>, 5261 (1990).<\/li>\n<li>&#8220;Radiative lifetimes of the states of CH<sub>3<\/sub>S&#8221;, Y.-Y. Lee, S.-Y. Chiang, and <strong>Y.-P. Lee<\/strong>, J. Chem. Phys. <strong>93<\/strong>, 4487 (1990).<\/li>\n<\/ol>\n<\/div><\/div><\/div><\/section>\n<\/div><\/div><\/div><!--close column table wrapper. Autoclose: 1 -->\n<div  class='flex_column av-1w7yzl-1cb8aa5f5ffaa99476334eb37f7df2a4 av_one_full  avia-builder-el-32  el_after_av_one_full  avia-builder-el-last  first flex_column_div  column-top-margin'     ><p>\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-mh3dx9fi-d498044a4ba0ceb1cc245db8f57350d8\">\n#top .av-special-heading.av-mh3dx9fi-d498044a4ba0ceb1cc245db8f57350d8{\npadding-bottom:0;\n}\nbody .av-special-heading.av-mh3dx9fi-d498044a4ba0ceb1cc245db8f57350d8 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-mh3dx9fi-d498044a4ba0ceb1cc245db8f57350d8 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-mh3dx9fi-d498044a4ba0ceb1cc245db8f57350d8 av-special-heading-h3 blockquote modern-quote  avia-builder-el-33  el_before_av_image  avia-builder-el-first '><h3 class='av-special-heading-tag '  itemprop=\"headline\"  ><\/p>\n<div class=\"title-style-1\">Research Highlights<\/div>\n<p><\/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-mh3dxxn0-3f9fdee2188e0f636942baaa0612bd35\">\n.avia-image-container.av-mh3dxxn0-3f9fdee2188e0f636942baaa0612bd35 img.avia_image{\nbox-shadow:none;\n}\n.avia-image-container.av-mh3dxxn0-3f9fdee2188e0f636942baaa0612bd35 .av-image-caption-overlay-center{\ncolor:#ffffff;\n}\n<\/style>\n<div  class='avia-image-container av-mh3dxxn0-3f9fdee2188e0f636942baaa0612bd35 av-styling-no-styling avia-align-center  avia-builder-el-34  el_after_av_heading  avia-builder-el-last '   itemprop=\"image\" itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/ImageObject\" ><div class=\"avia-image-container-inner\"><div class=\"avia-image-overlay-wrap\"><img decoding=\"async\" fetchpriority=\"high\" class='wp-image-19716 avia-img-lazy-loading-not-19716 avia_image ' src=\"https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/12\/Yuan-Pern-Lee-2-1030x713.png\" alt='Yuan-Pern-Lee' title='Yuan-Pern-Lee (2)'  height=\"713\" width=\"1030\"  itemprop=\"thumbnailUrl\" srcset=\"https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/12\/Yuan-Pern-Lee-2-1030x713.png 1030w, https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/12\/Yuan-Pern-Lee-2-289x200.png 289w, https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/12\/Yuan-Pern-Lee-2-768x532.png 768w, https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/12\/Yuan-Pern-Lee-2-705x488.png 705w, https:\/\/dac.nycu.edu.tw\/wp-content\/uploads\/2024\/12\/Yuan-Pern-Lee-2.png 1040w\" sizes=\"(max-width: 1030px) 100vw, 1030px\" \/><\/div><\/div><\/div><\/p><\/div>\n","protected":false},"excerpt":{"rendered":"<p>Yuan-Pern Lee \u674e\u9060\u9d6c<br \/>\nAtmospheric\/Combustion\/Planetary Chemistry, Free Radicals, Time-resolved IR, Photoionization, Matrix Isolation<br \/>\nTel | 03-5712121 #31459<br \/>\nEmail | yplee@nycu.edu.tw<br \/>\nOffice | SCBII R312<\/p>\n","protected":false},"author":18,"featured_media":17414,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_acf_changed":false,"footnotes":""},"tags":[],"portfolio_entries":[198,196],"class_list":["post-16604","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 v28.6 - 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