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Cited 77 time in webofscience Cited 110 time in scopus
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A Facet-Specific Quantum Dot Passivation Strategy for Colloid Management and Efficient Infrared Photovoltaicsopen access

Authors
Kim, YounghoonChe, FanglinJo, Jea WoongChoi, Jongminde Arquer, F. Pelayo GarciaVoznyy, OleksandrSun, BinKim, JunghwanChoi, Min-JaeQuintero-Bermudez, RafaelFan, FengjiaTan, Chih ShanBladt, EvaWalters, GrantProppe, Andrew H.Zou, ChengqinYuan, HaifengBals, SaraHofkens, JohanRoeffaers, Maarten B. J.Hoogland, SjoerdSargent, Edward H.
Issue Date
25-Apr-2019
Publisher
WILEY-V C H VERLAG GMBH
Keywords
colloidal quantum dots; facet-specific passivation; infrared solar cells; narrow bandgap; sodium acetate
Citation
ADVANCED MATERIALS, v.31, no.17
Indexed
SCI
SCIE
SCOPUS
Journal Title
ADVANCED MATERIALS
Volume
31
Number
17
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/8187
DOI
10.1002/adma.201805580
ISSN
0935-9648
1521-4095
Abstract
Colloidal nanocrystals combine size- and facet-dependent properties with solution processing. They offer thus a compelling suite of materials for technological applications. Their size- and facet-tunable features are studied in synthesis; however, to exploit their features in optoelectronic devices, it will be essential to translate control over size and facets from the colloid all the way to the film. Larger-diameter colloidal quantum dots (CQDs) offer the attractive possibility of harvesting infrared (IR) solar energy beyond absorption of silicon photovoltaics. These CQDs exhibit facets (nonpolar (100)) undisplayed in small-diameter CQDs; and the materials chemistry of smaller nanocrystals fails consequently to translate to materials for the short-wavelength IR regime. A new colloidal management strategy targeting the passivation of both (100) and (111) facets is demonstrated using distinct choices of cations and anions. The approach leads to narrow-bandgap CQDs with impressive colloidal stability and photoluminescence quantum yield. Photophysical studies confirm a reduction both in Stokes shift (approximate to 47 meV) and Urbach tail (approximate to 29 meV). This approach provides a approximate to 50% increase in the power conversion efficiency of IR photovoltaics compared to controls, and a approximate to 70% external quantum efficiency at their excitonic peak.
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