锌黄锡矿
材料科学
晶界
载流子寿命
光伏系统
限制
带隙
光电子学
微晶
重组
薄膜
纳米技术
薄膜太阳能电池
捷克先令
工程物理
化学
硅
微观结构
物理
电气工程
复合材料
机械工程
冶金
生物化学
基因
工程类
作者
Jianjun Li,Jialiang Huang,Fa‐Jun Ma,Heng Sun,Jialin Cong,Karen Privat,Richard F. Webster,Soshan Cheong,Yin Yao,Robert Lee Chin,Xiaojie Yuan,Mingrui He,Kaiwen Sun,Hui Li,Yaohua Mai,Ziv Hameiri,Nicholas J. Ekins‐Daukes,Richard D. Tilley,Thomas Unold,Martin A. Green
出处
期刊:Nature Energy
[Nature Portfolio]
日期:2022-07-21
卷期号:7 (8): 754-764
被引量:166
标识
DOI:10.1038/s41560-022-01078-7
摘要
Abstract Understanding carrier loss mechanisms at microscopic regions is imperative for the development of high-performance polycrystalline inorganic thin-film solar cells. Despite the progress achieved for kesterite, a promising environmentally benign and earth-abundant thin-film photovoltaic material, the microscopic carrier loss mechanisms and their impact on device performance remain largely unknown. Herein, we unveil these mechanisms in state-of-the-art Cu 2 ZnSnSe 4 (CZTSe) solar cells using a framework that integrates multiple microscopic and macroscopic characterizations with three-dimensional device simulations. The results indicate the CZTSe films have a relatively long intragrain electron lifetime of 10–30 ns and small recombination losses through bandgap and/or electrostatic potential fluctuations. We identify that the effective minority carrier lifetime of CZTSe is dominated by a large grain boundary recombination velocity (~10 4 cm s −1 ), which is the major limiting factor of present device performance. These findings and the framework can greatly advance the research of kesterite and other emerging photovoltaic materials.
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