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<dublin_core schema="dc">
<dcvalue element="contributor" qualifier="author">Jung,&#x20;Kinam</dcvalue>
<dcvalue element="contributor" qualifier="author">Kwon,&#x20;S.&#x20;Joon</dcvalue>
<dcvalue element="contributor" qualifier="author">Ko,&#x20;Hyungduk</dcvalue>
<dcvalue element="date" qualifier="accessioned">2024-01-19T22:31:55Z</dcvalue>
<dcvalue element="date" qualifier="available">2024-01-19T22:31:55Z</dcvalue>
<dcvalue element="date" qualifier="created">2021-09-03</dcvalue>
<dcvalue element="date" qualifier="issued">2018-06-21</dcvalue>
<dcvalue element="identifier" qualifier="issn">0021-8979</dcvalue>
<dcvalue element="identifier" qualifier="uri">https:&#x2F;&#x2F;pubs.kist.re.kr&#x2F;handle&#x2F;201004&#x2F;121243</dcvalue>
<dcvalue element="description" qualifier="abstract">We&#x20;numerically&#x20;investigate&#x20;a&#x20;plasmonic&#x20;nanobump&#x20;and&#x20;upconversion&#x20;(UC)&#x20;layer&#x20;incorporated&#x20;metal-insulator-metal&#x20;(MIM)&#x20;platform&#x20;as&#x20;a&#x20;light&#x20;absorber.&#x20;The&#x20;hemispherical&#x20;nanobump&#x20;array&#x20;situated&#x20;over&#x20;a&#x20;substrate&#x20;can&#x20;serve&#x20;as&#x20;an&#x20;optical&#x20;nanoantenna&#x20;in&#x20;a&#x20;broadband&#x20;wavelength&#x20;range.&#x20;By&#x20;precisely&#x20;engineering&#x20;the&#x20;design&#x20;and&#x20;optical&#x20;parameters&#x20;of&#x20;the&#x20;insulating&#x20;spacer&#x20;layer&#x20;sandwiched&#x20;by&#x20;the&#x20;top&#x20;nanobumps&#x20;and&#x20;back&#x20;reflecting&#x20;metal&#x20;film,&#x20;we&#x20;can&#x20;manipulate&#x20;the&#x20;light&#x20;absorption&#x20;inside&#x20;the&#x20;upconversion&#x20;layer.&#x20;The&#x20;optical&#x20;near-field&#x20;distribution&#x20;of&#x20;the&#x20;nanobump-assembled&#x20;plasmonic&#x20;platform&#x20;is&#x20;studied&#x20;using&#x20;the&#x20;finite-difference&#x20;time-domain&#x20;(FDTD)&#x20;method&#x20;to&#x20;probe&#x20;the&#x20;origin&#x20;of&#x20;enhanced&#x20;absorption&#x20;within&#x20;the&#x20;thin&#x20;UC&#x20;layer.&#x20;A&#x20;suggested&#x20;mathematical&#x20;model&#x20;considering&#x20;plasmonic&#x20;and&#x20;quenching&#x20;effects&#x20;of&#x20;the&#x20;MIM&#x20;configuration&#x20;to&#x20;analyze&#x20;the&#x20;near-field&#x20;maximum&#x20;as&#x20;a&#x20;function&#x20;of&#x20;an&#x20;insulator&#x20;thickness&#x20;is&#x20;in&#x20;good&#x20;agreement&#x20;with&#x20;the&#x20;FDTD&#x20;result.&#x20;The&#x20;30-fold&#x20;enhanced&#x20;light&#x20;absorption&#x20;within&#x20;the&#x20;UC&#x20;layer&#x20;is&#x20;observed&#x20;for&#x20;the&#x20;MIM&#x20;plasmonic&#x20;platform&#x20;compared&#x20;to&#x20;the&#x20;reference&#x20;sample.&#x20;Well-established&#x20;optical&#x20;field&#x20;confinement&#x20;at&#x20;the&#x20;nanoscale&#x20;gap&#x20;and&#x20;excitation&#x20;of&#x20;surface&#x20;plasmons&#x20;near&#x20;the&#x20;nanobumps&#x20;can&#x20;be&#x20;attributed&#x20;to&#x20;increased&#x20;light&#x20;absorption&#x20;inside&#x20;the&#x20;plasmonic&#x20;MIM&#x20;platform.&#x20;The&#x20;plasmonic&#x20;nanobump&#x20;array&#x20;platform&#x20;can&#x20;be&#x20;an&#x20;alternative&#x20;strategy&#x20;to&#x20;apply&#x20;a&#x20;highly&#x20;efficient&#x20;light&#x20;absorber&#x20;to&#x20;an&#x20;UC&#x20;device.&#x20;Published&#x20;by&#x20;AIP&#x20;Publishing.</dcvalue>
<dcvalue element="language" qualifier="none">English</dcvalue>
<dcvalue element="publisher" qualifier="none">AMER&#x20;INST&#x20;PHYSICS</dcvalue>
<dcvalue element="subject" qualifier="none">LIGHT&#x20;ABSORBER</dcvalue>
<dcvalue element="subject" qualifier="none">WAVE-GUIDES</dcvalue>
<dcvalue element="subject" qualifier="none">LUMINESCENCE</dcvalue>
<dcvalue element="subject" qualifier="none">NANOPARTICLES</dcvalue>
<dcvalue element="subject" qualifier="none">SPECTROSCOPY</dcvalue>
<dcvalue element="subject" qualifier="none">GAP</dcvalue>
<dcvalue element="subject" qualifier="none">METAMATERIALS</dcvalue>
<dcvalue element="subject" qualifier="none">NANOANTENNAS</dcvalue>
<dcvalue element="subject" qualifier="none">ANTENNAS</dcvalue>
<dcvalue element="subject" qualifier="none">UNIFORM</dcvalue>
<dcvalue element="title" qualifier="none">Plasmonic&#x20;nanobump-assembled&#x20;platform&#x20;for&#x20;absorption&#x20;enhancement&#x20;of&#x20;upconversion&#x20;materials</dcvalue>
<dcvalue element="type" qualifier="none">Article</dcvalue>
<dcvalue element="identifier" qualifier="doi">10.1063&#x2F;1.5025853</dcvalue>
<dcvalue element="description" qualifier="journalClass">1</dcvalue>
<dcvalue element="identifier" qualifier="bibliographicCitation">JOURNAL&#x20;OF&#x20;APPLIED&#x20;PHYSICS,&#x20;v.123,&#x20;no.23</dcvalue>
<dcvalue element="citation" qualifier="title">JOURNAL&#x20;OF&#x20;APPLIED&#x20;PHYSICS</dcvalue>
<dcvalue element="citation" qualifier="volume">123</dcvalue>
<dcvalue element="citation" qualifier="number">23</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scie</dcvalue>
<dcvalue element="description" qualifier="journalRegisteredClass">scopus</dcvalue>
<dcvalue element="identifier" qualifier="wosid">000435989000001</dcvalue>
<dcvalue element="identifier" qualifier="scopusid">2-s2.0-85048656260</dcvalue>
<dcvalue element="relation" qualifier="journalWebOfScienceCategory">Physics,&#x20;Applied</dcvalue>
<dcvalue element="relation" qualifier="journalResearchArea">Physics</dcvalue>
<dcvalue element="type" qualifier="docType">Article</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">LIGHT&#x20;ABSORBER</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">WAVE-GUIDES</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">LUMINESCENCE</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">NANOPARTICLES</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">SPECTROSCOPY</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">GAP</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">METAMATERIALS</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">NANOANTENNAS</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">ANTENNAS</dcvalue>
<dcvalue element="subject" qualifier="keywordPlus">UNIFORM</dcvalue>
</dublin_core>
