Optical Tunneling Mediated Sub-Skin-Depth High Emissivity Tungsten Radiators

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dc.contributor.authorCho, Jin-Wooko
dc.contributor.authorLee, Kyun-Junko
dc.contributor.authorLee, Tae-Ilko
dc.contributor.authorKim, Young-Binko
dc.contributor.authorChoi, Dae-Geunko
dc.contributor.authorNam, Youngsukko
dc.contributor.authorKim, Sun-Kyungko
dc.date.accessioned2021-06-25T04:50:08Z-
dc.date.available2021-06-25T04:50:08Z-
dc.date.created2021-06-25-
dc.date.created2021-06-25-
dc.date.issued2019-10-
dc.identifier.citationNANO LETTERS, v.19, no.10, pp.7093 - 7099-
dc.identifier.issn1530-6984-
dc.identifier.urihttp://hdl.handle.net/10203/286216-
dc.description.abstractTailoring the spectrum of thermal radiation at high temperatures is a central issue in the study of thermal radiation harnessed energy resources. Although bulk metals with periodic cavities incorporated into their surfaces provide high emissivity, they require a complicated micron metal etch, thereby precluding reliable, continuous operation. Here, we report thermally stable, highly emissive, ultrathin (<20 nm) tungsten (W) radiators that were prepared in a scalable and cost-effective route. Alumina/W/alumina multiwalled, submicron cavity arrays were fabricated sequentially using nanoimprinting lithography, thin film deposition, and calcination processes. To highlight the practical importance of high-temperature radiators, we developed a thermophotovoltaic (TPV) system equipped with fabricated W radiators and low-bandgap GaSb photovoltaic cells. The TPV system produced electric power reliably during repeated temperature cycling between 500 and 1200 K; the power density at 1200 K was fixed to be approximately 1.0 W/cm(2). The temperature-dependent electric power was quantitatively reproduced using a one-dimensional energy conversion model. The symmetric configuration of alumina/W/alumina multiwall together with the presence of a void inside each cavity alleviated thermal stress, which was responsible for the stable TPV performance. The short-current-density (J(sc)) of developed TPV system was augmented significantly by decreasing the W thickness below its skin depth. A 17 nm thick W radiator yielded a 32% enhancement in J(sc) compared to a 123 nm thick W radiator. Electromagnetic analysis indicated that subskin-depth W cavity arrays led to suppressed surface reflection due to the mitigated screening effect of free electrons, thereby enhancing the absorption of light within each W wall. Such optical tunneling-mediated absorption or radiation was valid for any metal material and morphology (e.g., planar or patterned).-
dc.languageEnglish-
dc.publisherAMER CHEMICAL SOC-
dc.titleOptical Tunneling Mediated Sub-Skin-Depth High Emissivity Tungsten Radiators-
dc.typeArticle-
dc.identifier.wosid000490353500048-
dc.identifier.scopusid2-s2.0-85072697976-
dc.type.rimsART-
dc.citation.volume19-
dc.citation.issue10-
dc.citation.beginningpage7093-
dc.citation.endingpage7099-
dc.citation.publicationnameNANO LETTERS-
dc.identifier.doi10.1021/acs.nanolett.9b02585-
dc.contributor.localauthorNam, Youngsuk-
dc.contributor.nonIdAuthorCho, Jin-Woo-
dc.contributor.nonIdAuthorLee, Kyun-Jun-
dc.contributor.nonIdAuthorLee, Tae-Il-
dc.contributor.nonIdAuthorKim, Young-Bin-
dc.contributor.nonIdAuthorChoi, Dae-Geun-
dc.contributor.nonIdAuthorKim, Sun-Kyung-
dc.description.isOpenAccessN-
dc.type.journalArticleArticle-
dc.subject.keywordAuthorOptical tunneling-
dc.subject.keywordAuthorthermal radiation-
dc.subject.keywordAuthorspectrum engineering-
dc.subject.keywordAuthorradiative heat transfer-
dc.subject.keywordAuthorthermophotovoltaics-
dc.subject.keywordPlusPHOTONIC CRYSTALS-
dc.subject.keywordPlusABSORBERS-
dc.subject.keywordPlusGENERATION-
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