Mechanisms of extrinsic alkali incorporation in GIGS solar cells on flexible polyimide elucidated by nanoscale and quantitative analyses

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dc.contributor.authorKim, Kihwanko
dc.contributor.authorJeong, Inyoungko
dc.contributor.authorCho, Yunaeko
dc.contributor.authorShin, Donghyeopko
dc.contributor.authorSong, Soominko
dc.contributor.authorAhn, Seung Kyuko
dc.contributor.authorEo, Young-Jooko
dc.contributor.authorCho, Arako
dc.contributor.authorJung, Chanwonko
dc.contributor.authorJo, Williamko
dc.contributor.authorKim, Jin Hyeokko
dc.contributor.authorChoi, Pyuck-Pako
dc.contributor.authorGwak, Jihyeko
dc.contributor.authorYun, Jae Hoko
dc.date.accessioned2020-05-14T05:20:17Z-
dc.date.available2020-05-14T05:20:17Z-
dc.date.created2019-11-04-
dc.date.created2019-11-04-
dc.date.issued2020-01-
dc.identifier.citationNANO ENERGY, v.67, pp.104201-
dc.identifier.issn2211-2855-
dc.identifier.urihttp://hdl.handle.net/10203/274188-
dc.description.abstractIn this work, Cu(In,Ga)Se-2 (CIGS) solar cells on polyimide (PI) substrates were fabricated using a low-temperature three-stage co-evaporation process. To enhance device performance, the CIGS films were extrinsically doped with alkali (Na and K) using an in-situ post deposition treatment (PDT). To account for mechanisms of extrinsic alkali incorporation in CIGS solar cells on flexible polyimide, the alkali dopant concentrations in the film bulk (intragrain and grain boundary) and the surface chemistries/band structures were quantitatively investigated with various advanced characterization methods. In addition, the effects of the PDT sequences on the resulting device performance were studied with a particular emphasis on the characteristics of CIGS surfaces. By controlling the alkali incorporation into the CIGS absorber films, flexible lightweight CIGS thin-film solar cells with an efficiency of approximately 19% were obtained.-
dc.languageEnglish-
dc.publisherELSEVIER-
dc.titleMechanisms of extrinsic alkali incorporation in GIGS solar cells on flexible polyimide elucidated by nanoscale and quantitative analyses-
dc.typeArticle-
dc.identifier.wosid000504828100053-
dc.identifier.scopusid2-s2.0-85074421521-
dc.type.rimsART-
dc.citation.volume67-
dc.citation.beginningpage104201-
dc.citation.publicationnameNANO ENERGY-
dc.identifier.doi10.1016/j.nanoen.2019.104201-
dc.contributor.localauthorChoi, Pyuck-Pa-
dc.contributor.nonIdAuthorKim, Kihwan-
dc.contributor.nonIdAuthorJeong, Inyoung-
dc.contributor.nonIdAuthorCho, Yunae-
dc.contributor.nonIdAuthorShin, Donghyeop-
dc.contributor.nonIdAuthorSong, Soomin-
dc.contributor.nonIdAuthorAhn, Seung Kyu-
dc.contributor.nonIdAuthorEo, Young-Joo-
dc.contributor.nonIdAuthorCho, Ara-
dc.contributor.nonIdAuthorJo, William-
dc.contributor.nonIdAuthorKim, Jin Hyeok-
dc.contributor.nonIdAuthorGwak, Jihye-
dc.contributor.nonIdAuthorYun, Jae Ho-
dc.description.isOpenAccessY-
dc.type.journalArticleArticle-
dc.subject.keywordAuthorSolar cells-
dc.subject.keywordAuthorCIGS-
dc.subject.keywordAuthorFlexible-
dc.subject.keywordAuthorPolyimide-
dc.subject.keywordAuthorAtom probe tomography-
dc.subject.keywordPlusPOST DEPOSITION TREATMENT-
dc.subject.keywordPlusGRAIN-BOUNDARIES-
dc.subject.keywordPlusTHIN-FILMS-
dc.subject.keywordPlusPOSTDEPOSITION TREATMENT-
dc.subject.keywordPlusX-RAY-
dc.subject.keywordPlusEFFICIENCY-
dc.subject.keywordPlusNA-
dc.subject.keywordPlusCOEVAPORATION-
dc.subject.keywordPlusCHALCOPYRITE-
dc.subject.keywordPlusPERFORMANCE-
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