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dc.contributor.authorFan, James Z.
dc.contributor.authorVafaie, Maral
dc.contributor.authorBertens, Koen
dc.contributor.authorSytnyk, Mykhailo
dc.contributor.authorPina, Joao M.
dc.contributor.authorSagar, Laxmi Kishore
dc.contributor.authorOuellette, Olivier
dc.contributor.authorProppe, Andrew H.
dc.contributor.authorRasouli, Armin Sedighian
dc.contributor.authorGao, Yajun
dc.contributor.authorBaek, Se-Woong
dc.contributor.authorChen, Bin
dc.contributor.authorLaquai, Frédéric
dc.contributor.authorHoogland, Sjoerd
dc.contributor.authorGarcía de Arquer, F Pelayo
dc.contributor.authorHeiss, Wolfgang
dc.contributor.authorSargent, E.
dc.date.accessioned2020-06-23T06:59:58Z
dc.date.available2020-06-23T06:59:58Z
dc.date.issued2020-06-16
dc.date.submitted2020-04-14
dc.identifier.citationFan, J. Z., Vafaie, M., Bertens, K., Sytnyk, M., Pina, J. M., Sagar, L. K., … Sargent, E. H. (2020). Micron Thick Colloidal Quantum Dot Solids. Nano Letters. doi:10.1021/acs.nanolett.0c01614
dc.identifier.issn1530-6984
dc.identifier.issn1530-6992
dc.identifier.doi10.1021/acs.nanolett.0c01614
dc.identifier.urihttp://hdl.handle.net/10754/663783
dc.description.abstractShortwave infrared colloidal quantum dots (SWIRCQDs) are semiconductors capable of harvesting across the AM1.5G solar spectrum. Today’s SWIR-CQD solar cells rely on spin-coating; however, these films exhibit cracking once thickness exceeds ∼500 nm. We posited that a blade-coating strategy could enable thick QD films. We developed a ligand exchange with an additional resolvation step that enabled the dispersion of SWIRCQDs. We then engineered a quaternary ink that combined highviscosity solvents with short QD stabilizing ligands. This ink, bladecoated over a mild heating bed, formed micron-thick SWIR-CQD films. These SWIR-CQD solar cells achieved short-circuit current densities (Jsc) that reach 39 mA cm−2 , corresponding to the harvest of 60% of total photons incident under AM1.5G illumination. External quantum efficiency measurements reveal both the first exciton peak and the closest Fabry−Perot resonance peak reaching approximately 80%this is the highest unbiased EQE reported beyond 1400 nm in a solution-processed semiconductor.
dc.description.sponsorshipThe authors thank L. Levina, E. Palmiano, R. Wolowiec, and D. Kopilovic for their assistance during the period of study. The authors also thank the members of QD Solar for their assistance and discussions during the period of study: V. Tran, T. Vo, T. Gibbs, M. Labine, A. MacDonald, E. Mosaferi, R. Quintero-Bermudez, and A. Fisher.
dc.description.sponsorshipThis work was supported by Ontario Research Fund-Research Excellence program (ORF7 ministry of Research and Innovation, Ontario Research Fund-Research Excellence Round 7) and by the Natural Sciences and Engineering Research Council (NSERC) of Canada in the form of Alexander Graham Bell Canada Graduate Scholarships (CGS-D), Materials for Enhanced Energy Technologies (MEET) scholarships, and the NSERC Collaborative Research and Training Experience (CREATE) Program Grant Number 466083. The authors acknowledge financial support from QD Solar. This publication is also based upon work supported by the King Abdullah University of Science and Technology (KAUST) Office of Sponsored Research (OSR) under Award No. OSR-CRG2018-3737.
dc.publisherAmerican Chemical Society (ACS)
dc.relation.urlhttps://pubs.acs.org/doi/10.1021/acs.nanolett.0c01614
dc.rightsThis document is the Accepted Manuscript version of a Published Work that appeared in final form in Nano Letters, copyright © American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see https://pubs.acs.org/doi/10.1021/acs.nanolett.0c01614.
dc.titleMicron Thick Colloidal Quantum Dot Solids
dc.typeArticle
dc.contributor.departmentPhysical Science and Engineering (PSE) Division
dc.contributor.departmentMaterial Science and Engineering Program
dc.contributor.departmentKAUST Solar Center (KSC)
dc.identifier.journalNano Letters
dc.rights.embargodate2021-06-16
dc.eprint.versionPost-print
dc.contributor.institutionDepartment of Electrical and Computer Engineering, University of Toronto, 10 King’s College Road, Toronto, Ontario M5S 3G4, Canada
dc.contributor.institutionMaterials for Electronics and Energy Technology (i-MEET), Department of Materials Science and Engineering, Friedrich-Alexander-Universität Erlangen-Nürnberg, Energy Campus Nürnberg, Fürtherstraße 250, Nürnberg 90429, Germany
kaust.personGao, Yajun
kaust.personLaquai, Frederic
kaust.grant.numberCRG2018-3737.
dc.date.accepted2020-06-12
refterms.dateFOA2020-06-23T11:54:28Z
kaust.acknowledged.supportUnitOSR
dc.date.published-online2020-06-16
dc.date.published-print2020-07-08


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