Near-unity emitting copper-doped colloidal semiconductor quantum wells for luminescent solar concentrators

buir.contributor.authorDemir, Hilmi Volkan
buir.contributor.orcidDemir, Hilmi Volkan|0000-0003-1793-112X
dc.citation.epage10
dc.citation.issueNumber30
dc.citation.spage1
dc.citation.volumeNumber29
dc.contributor.authorSharma, M.
dc.contributor.authorGungor K.
dc.contributor.authorYeltik A.
dc.contributor.authorOlutas M.
dc.contributor.authorGuzelturk, B.
dc.contributor.authorKelestemur Y.
dc.contributor.authorErdem, T.
dc.contributor.authorDelikanli S.
dc.contributor.authorMcBride, J. R.
dc.contributor.authorDemir, Hilmi Volkan
dc.date.accessioned2018-04-12T10:39:27Z
dc.date.available2018-04-12T10:39:27Z
dc.date.issued2017
dc.departmentInstitute of Materials Science and Nanotechnology (UNAM)
dc.departmentDepartment of Electrical and Electronics Engineering
dc.departmentDepartment of Physics
dc.description.abstractDoping of bulk semiconductors has revealed widespread success in optoelectronic applications. In the past few decades, substantial effort has been engaged for doping at the nanoscale. Recently, doped colloidal quantum dots (CQDs) have been demonstrated to be promising materials for luminescent solar concentrators (LSCs) as they can be engineered for providing highly tunable and Stokes-shifted emission in the solar spectrum. However, existing doped CQDs that are aimed for full solar spectrum LSCs suffer from moderately low quantum efficiency, intrinsically small absorption cross-section, and gradually increasing absorption profiles coinciding with the emission spectrum, which together fundamentally limit their effective usage. Here, the authors show the first account of copper doping into atomically flat colloidal quantum wells (CQWs). In addition to Stokes-shifted and tunable dopant-induced photoluminescence emission, the copper doping into CQWs enables near-unity quantum efficiencies (up to ≈97%), accompanied by substantially high absorption cross-section and inherently step-like absorption profile, compared to those of the doped CQDs. Based on these exceptional properties, the authors have demonstrated by both experimental analysis and numerical modeling that these newly synthesized doped CQWs are excellent candidates for LSCs. These findings may open new directions for deployment of doped CQWs in LSCs for advanced solar light harvesting technologies.
dc.embargo.release2018-08-11
dc.identifier.doi10.1002/adma.201700821
dc.identifier.issn0935-9648
dc.identifier.urihttp://hdl.handle.net/11693/36424
dc.language.isoEnglish
dc.publisherWiley-VCH Verlag
dc.relation.isversionofhttp://dx.doi.org/10.1002/adma.201700821
dc.source.titleAdvanced Materials
dc.subject2D semiconductor nanoplatelets
dc.subjectCopper doping
dc.subjectLuminescent solar concentrators
dc.subjectNucleation doping
dc.subjectQuantum efficiency
dc.subjectAbsorption spectroscopy
dc.subjectCopper
dc.subjectDoping (additives)
dc.subjectEfficiency
dc.subjectEmission spectroscopy
dc.subjectFlowcharting
dc.subjectLuminescence
dc.subjectSemiconductor doping
dc.subjectSemiconductor quantum dots
dc.subjectSemiconductor quantum wells
dc.subjectSolar concentrators
dc.subjectSolar radiation
dc.subjectAbsorption cross sections
dc.subjectColloidal quantum wells
dc.titleNear-unity emitting copper-doped colloidal semiconductor quantum wells for luminescent solar concentrators
dc.typeArticle

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