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Guanidinium-Pseudohalide Perovskite Interfaces Enable Surface Reconstruction of Colloidal Quantum Dots for Efficient and Stable Photovoltaics

Authors
Yang, JongheeCho, Seong ChanLee, SeungjinYoon, Jung WonJeong, Woo HyeonSong, HochanOh, Jae TaekLim, Seul GiBae, Sung YongLee, Bo RamAhmadi, MahshidSargent, Edward H.Yi, WhikunLee, Sang UckChoi, Hyosung
Issue Date
Jan-2022
Publisher
American Chemical Society
Keywords
Guanidinium; Pseudohalides; Perovskites; Colloidal Quantum Dots; Photovoltaics
Citation
ACS Nano, v.16, no.1, pp.1649 - 1660
Indexed
SCIE
SCOPUS
Journal Title
ACS Nano
Volume
16
Number
1
Start Page
1649
End Page
1660
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/108033
DOI
10.1021/acsnano.1c10636
ISSN
1936-0851
Abstract
Complete surface passivation of colloidal quantum dots (CQDs) and their strong electronic coupling are key factors toward high-performance CQD-based photovoltaics (CQDPVs). Also, the CQD matrices must be protected from oxidative environments, such as ambient air and moisture, to guarantee air-stable operation of the CQDPVs. Herein, we devise a complementary and effective approach to reconstruct the oxidized CQD surface using guanidinium and pseudohalide. Unlike conventional halides, thiocyanate anions provide better surface passivation with effective replacement of surface oxygen species and additional filling of defective sites, whereas guanidinium cations promote the construction of epitaxial perovskite bridges within the CQD matrix and augment electronic coupling. Additionally, we replace a defective 1,2-ethanedithiol-treated CQD hole transport layer (HTL) with robust polymeric HTLs, based on a judicious consideration of the energy level alignment established at the CQD/HTL interface. These efforts collectively result in high-performance and stable CQDPVs with photocurrents over 30 mA cm(-2), similar to 80% quantum efficiency at excitonic peaks and stable operation under humid and ambient conditions. Elucidation of carrier dynamics further reveals that interfacial recombination associated with band alignment governs both the CQDPV performance and stability.
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COLLEGE OF SCIENCE AND CONVERGENCE TECHNOLOGY > DEPARTMENT OF CHEMICAL AND MOLECULAR ENGINEERING > 1. Journal Articles

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