Micron Thick Colloidal Quantum Dot Solids

Shortwave infrared colloidal quantum dots (SWIR-CQDs) 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 ena...

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Veröffentlicht in:Nano letters 2020-07, Vol.20 (7), p.5284-5291
Hauptverfasser: Fan, James Z, Vafaie, Maral, Bertens, Koen, Sytnyk, Mykhailo, Pina, Joao M, Sagar, Laxmi Kishore, Ouellette, Olivier, Proppe, Andrew H, Rasouli, Armin Sedighian, Gao, Yajun, Baek, Se-Woong, Chen, Bin, Laquai, Frédéric, Hoogland, Sjoerd, Arquer, F. Pelayo García de, Heiss, Wolfgang, Sargent, Edward H
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Sprache:eng
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Zusammenfassung:Shortwave infrared colloidal quantum dots (SWIR-CQDs) 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 SWIR-CQDs. We then engineered a quaternary ink that combined high-viscosity solvents with short QD stabilizing ligands. This ink, blade-coated 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.
ISSN:1530-6984
1530-6992
DOI:10.1021/acs.nanolett.0c01614