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Surface Engineering Enables Efficient AgBiS2 Quantum Dot Solar Cells

delete2024-08-19
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PRE
AI
Y
Yongqiang Ji
Q
Qixuan Zhong
X
Xiaoyu Yang
李磊 cover
李磊 (Lei Li)
Q
Qiuyang Li
H
Hongyu Xu
P
Peng Chen
S
Shunde Li
H
Haoming Yan
Y
Yun Xiao
F
Fan Xu
H
Hengwei Qiu
龚旗煌 (Qihuang Gong)
L
Lichen Zhao
R
Rui Zhu *
DOI:10.1021/acs.nanolett.4c00959delete
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Abstract

Abstract

En 中文
Surface ligand chemistry is vital to control the synthesis, diminish surface defects, and improve the electronic coupling of quantum dots (QDs) toward emerging applications in optoelectronic devices. Here, we successfully develop highly homogeneous and dispersed AgBiS2 QDs, focus on the control of interdot spacing, and substitute the long-chain ligands with ammonium iodide in solution. This results in improved electronic coupling of AgBiS2 QDs with excellent surface passivation, which greatly facilitates carrier transport within the QD films. Based on the stable AgBiS2 QD dispersion with the optimal ligand state, a homogeneous and densely packed QD film is prepared by a facile one-step coating process, delivering a champion power conversion efficiency of approximately 8% in the QD solar cells with outstanding shelf life stability. The proposed surface engineering strategy holds the potential to become a universal preprocessing step in the realm of high-performance QD optoelectronic devices.
Keywords:
AgBiS2 quantumdot
High absorption coefficient
Ammonium iodide
Liquid phase ligand exchange
Surface passivation

Journal

Nano Letters cover
Nano Letters
IF:
9.1
Papers:
2.7W
Citations:
16.5W

Organization

P
peking university
Scholars:
11.8W
Papers: 8.7W
Citations: 146