钝化
钙钛矿(结构)
卤化物
能量转换效率
材料科学
光伏系统
结晶
离子键合
化学工程
纳米技术
粒度
离子
无机化学
光电子学
化学
冶金
有机化学
图层(电子)
工程类
生物
生态学
作者
Rui Li,Shiang Zhang,Hao Zhang,Zhiteng Wang,Xiaolong Feng,Yachao Du,Tianxiang Zhou,Xin Chen,Pengchi Liu,Lei Liu,Junqi Zhang,Qiyong Chen,Lili Xi,Kui Zhao,Shengzhong Liu,Qingwen Tian,Qingwen Tian
出处
期刊:Angewandte Chemie
[Wiley]
日期:2024-07-25
卷期号:63 (42): e202410600-e202410600
被引量:32
标识
DOI:10.1002/anie.202410600
摘要
Abstract The characteristics of the soft component and the ionic‐electronic nature in all‐inorganic CsPbI 3‐x Br x perovskite typically lead to a significant number of halide vacancy defects and ions migration, resulting in a reduction in both photovoltaic efficiency and stability. Herein, we present a tailored approach in which both anion‐fixation and undercoordinated‐Pb passivation are achieved in situ during crystallization by employing a molecule derived from aniline, specifically 2‐methoxy‐5‐trifluoromethylaniline (MFA), to address the above challenges. The incorporation of MFA into the perovskite film results in a pronounced inhibition of ion migration, a significant reduction in trap density, an enhancement in grain size, an extension of charge carrier lifetime, and a more favorable alignment of energy levels. These advantageous characteristics contribute to achieving a champion power conversion efficiency (PCE) of 22.14 % for the MFA‐based CsPbI 3‐x Br x perovskite solar cells (PSCs), representing the highest efficiency reported thus far for this type of inorganic metal halide perovskite solar cells, to the best of our knowledge. Moreover, the resultant PSCs exhibits higher environmental stability and photostability. This strategy is anticipated to offer significant advantages for large‐area fabrication, particularly in terms of simplicity.
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