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<dublin_core schema="dc">
<dcvalue element="contributor" qualifier="author">Mutz,&#x20;Niklas</dcvalue>
<dcvalue element="contributor" qualifier="author">Park,&#x20;Soohyung</dcvalue>
<dcvalue element="contributor" qualifier="author">Schultz,&#x20;Thorsten</dcvalue>
<dcvalue element="contributor" qualifier="author">Sadofev,&#x20;Sergey</dcvalue>
<dcvalue element="contributor" qualifier="author">Dalgleish,&#x20;Simon</dcvalue>
<dcvalue element="contributor" qualifier="author">Reissig,&#x20;Louisa</dcvalue>
<dcvalue element="contributor" qualifier="author">Koch,&#x20;Norbert</dcvalue>
<dcvalue element="contributor" qualifier="author">List-Kratochvil,&#x20;Emil&#x20;J.&#x20;W.</dcvalue>
<dcvalue element="contributor" qualifier="author">Blumstengel,&#x20;Sylke</dcvalue>
<dcvalue element="date" qualifier="accessioned">2024-01-19T18:03:38Z</dcvalue>
<dcvalue element="date" qualifier="available">2024-01-19T18:03:38Z</dcvalue>
<dcvalue element="date" qualifier="created">2021-09-05</dcvalue>
<dcvalue element="date" qualifier="issued">2020-02-06</dcvalue>
<dcvalue element="identifier" qualifier="issn">1932-7447</dcvalue>
<dcvalue element="identifier" qualifier="uri">https:&#x2F;&#x2F;pubs.kist.re.kr&#x2F;handle&#x2F;201004&#x2F;118965</dcvalue>
<dcvalue element="description" qualifier="abstract">y&#x20;Monolayer&#x20;(ML)&#x20;transition-metal&#x20;dichalcogenides&#x20;(TMDCs)&#x20;are&#x20;an&#x20;attracting&#x20;new&#x20;class&#x20;of&#x20;two-dimensional&#x20;direct&#x20;band&#x20;gap&#x20;semiconducting&#x20;materials&#x20;for&#x20;optoelectronic&#x20;device&#x20;applications.&#x20;The&#x20;combination&#x20;of&#x20;TMDCs&#x20;with&#x20;organic&#x20;semiconductors&#x20;holds&#x20;the&#x20;promise&#x20;to&#x20;further&#x20;improve&#x20;device&#x20;properties&#x20;with&#x20;added&#x20;functionality.&#x20;Here,&#x20;we&#x20;demonstrate&#x20;that&#x20;excited-state&#x20;charge&#x20;transfer&#x20;from&#x20;a&#x20;thin&#x20;organic&#x20;absorber&#x20;layer,&#x20;i.e.,&#x20;metal-free&#x20;phthalocyanine&#x20;(H2Pc),&#x20;enhances&#x20;the&#x20;photoresponse&#x20;of&#x20;ML&#x20;MoS2&#x20;dramatically&#x20;at&#x20;the&#x20;same&#x20;time&#x20;also&#x20;significantly&#x20;extending&#x20;it&#x20;to&#x20;spectral&#x20;regions&#x20;where&#x20;the&#x20;TMDC&#x20;is&#x20;transparent.&#x20;The&#x20;fundamental&#x20;processes&#x20;enabling&#x20;this&#x20;boost&#x20;in&#x20;photodetector&#x20;performance&#x20;are&#x20;unraveled&#x20;by&#x20;a&#x20;combination&#x20;of&#x20;photoemission&#x20;(PES),&#x20;photoluminescence&#x20;(PL),&#x20;and&#x20;photocurrent&#x20;action&#x20;spectroscopy.&#x20;Direct&#x20;and&#x20;inverse&#x20;PES&#x20;reveal&#x20;a&#x20;type&#x20;II&#x20;energy&#x20;level&#x20;alignment&#x20;at&#x20;the&#x20;MoS2&#x2F;H2Pc&#x20;interface&#x20;with&#x20;a&#x20;large&#x20;energy&#x20;offset&#x20;of&#x20;1&#x20;eV,&#x20;which&#x20;is&#x20;sufficient&#x20;to&#x20;drive&#x20;the&#x20;excited-state&#x20;charge&#x20;transfer.&#x20;Time-resolved&#x20;PL&#x20;measurements&#x20;evidence&#x20;highly&#x20;efficient&#x20;dissociation&#x20;of&#x20;excitons&#x20;generated&#x20;in&#x20;H2Pc&#x20;when&#x20;they&#x20;are&#x20;in&#x20;contact&#x20;with&#x20;MoS2.&#x20;Exciton&#x20;dissociation&#x20;results&#x20;in&#x20;the&#x20;formation&#x20;of&#x20;a&#x20;charge-separated&#x20;state&#x20;at&#x20;the&#x20;hybrid&#x20;interface&#x20;with&#x20;an&#x20;energy&#x20;gap&#x20;of&#x20;ca.&#x20;1.2&#x20;eV,&#x20;in&#x20;accordance&#x20;with&#x20;PES.&#x20;This&#x20;state&#x20;then&#x20;dissociates&#x20;into&#x20;free&#x20;carriers&#x20;and&#x20;markedly&#x20;contributes&#x20;to&#x20;the&#x20;current&#x20;in&#x20;the&#x20;photodetector,&#x20;as&#x20;demonstrated&#x20;by&#x20;photocurrent&#x20;action&#x20;spectroscopy.&#x20;This&#x20;reveals&#x20;that&#x20;the&#x20;photoconductivity&#x20;within&#x20;the&#x20;MoS2&#x20;ML&#x20;is&#x20;generated&#x20;by&#x20;light&#x20;directly&#x20;absorbed&#x20;in&#x20;the&#x20;TMDC&#x20;and,&#x20;notably,&#x20;with&#x20;comparable&#x20;efficiency&#x20;by&#x20;the&#x20;absorption&#x20;by&#x20;H2Pc.&#x20;The&#x20;present&#x20;demonstration&#x20;of&#x20;a&#x20;highly&#x20;efficient&#x20;carrier&#x20;generation&#x20;in&#x20;TMDC&#x2F;organic&#x20;hybrid&#x20;structures&#x20;paves&#x20;the&#x20;way&#x20;for&#x20;future&#x20;nanoscale&#x20;photodetectors&#x20;with&#x20;very&#x20;wide&#x20;spectral&#x20;sensitivity.</dcvalue>
<dcvalue element="language" qualifier="none">English</dcvalue>
<dcvalue element="publisher" qualifier="none">American&#x20;Chemical&#x20;Society</dcvalue>
<dcvalue element="subject" qualifier="none">TRANSITION-METAL&#x20;DICHALCOGENIDE</dcvalue>
<dcvalue element="subject" qualifier="none">PHASE-TRANSITION</dcvalue>
<dcvalue element="subject" qualifier="none">SURFACE</dcvalue>
<dcvalue element="subject" qualifier="none">FILMS</dcvalue>
<dcvalue element="subject" qualifier="none">SEMICONDUCTORS</dcvalue>
<dcvalue element="subject" qualifier="none">PHOTORESPONSE</dcvalue>
<dcvalue element="subject" qualifier="none">DISSOCIATION</dcvalue>
<dcvalue element="subject" qualifier="none">ELECTRON</dcvalue>
<dcvalue element="subject" qualifier="none">MODEL</dcvalue>
<dcvalue element="subject" qualifier="none">LAYER</dcvalue>
<dcvalue element="title" qualifier="none">Excited-State&#x20;Charge&#x20;Transfer&#x20;Enabling&#x20;MoS2&#x2F;Phthalocyanine&#x20;Photodetectors&#x20;with&#x20;Extended&#x20;Spectral&#x20;Sensitivity</dcvalue>
<dcvalue element="type" qualifier="none">Article</dcvalue>
<dcvalue element="identifier" qualifier="doi">10.1021&#x2F;acs.jpcc.9b10877</dcvalue>
<dcvalue element="description" qualifier="journalClass">1</dcvalue>
<dcvalue element="identifier" qualifier="bibliographicCitation">The&#x20;Journal&#x20;of&#x20;Physical&#x20;Chemistry&#x20;C,&#x20;v.124,&#x20;no.5,&#x20;pp.2837&#x20;-&#x20;2843</dcvalue>
<dcvalue element="citation" qualifier="title">The&#x20;Journal&#x20;of&#x20;Physical&#x20;Chemistry&#x20;C</dcvalue>
<dcvalue element="citation" qualifier="volume">124</dcvalue>
<dcvalue element="citation" qualifier="number">5</dcvalue>
<dcvalue element="citation" qualifier="startPage">2837</dcvalue>
<dcvalue element="citation" qualifier="endPage">2843</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scie</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scopus</dcvalue>
<dcvalue element="identifier" qualifier="wosid">000512222000011</dcvalue>
<dcvalue element="identifier" qualifier="scopusid">2-s2.0-85079780170</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Chemistry,&#x20;Physical</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Nanoscience&#x20;&amp;&#x20;Nanotechnology</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Materials&#x20;Science,&#x20;Multidisciplinary</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Chemistry</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Science&#x20;&amp;&#x20;Technology&#x20;-&#x20;Other&#x20;Topics</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Materials&#x20;Science</dcvalue>
<dcvalue element="type" qualifier="docType">Article</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">TRANSITION-METAL&#x20;DICHALCOGENIDE</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">PHASE-TRANSITION</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">SURFACE</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">FILMS</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">SEMICONDUCTORS</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">PHOTORESPONSE</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">DISSOCIATION</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">ELECTRON</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">MODEL</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">LAYER</dcvalue>
</dublin_core>
