An Effective Precursor‐Solutioned Strategy for Developing Cu2ZnSn(S, Se)4 Thin Film Toward High Efficiency Solar Cell

锌黄锡矿 材料科学 捷克先令 成核 薄膜 化学工程 结晶度 太阳能电池 纳米技术 硫脲 环境友好型 能量转换效率 图层(电子) 光电子学 复合材料 有机化学 化学 生态学 工程类 生物
作者
Ang Liang,Yue Jian,Yun Zhao,Shuo Chen,Jun Zhao,Zhuanghao Zheng,Luo Jingting,Peijin Li,Xianghua Zhang,Zhenghua Su,Guangxing Liang
出处
期刊:Advanced Energy Materials [Wiley]
标识
DOI:10.1002/aenm.202403950
摘要

Abstract Enhancing the efficiency of Cu 2 ZnSn (S, Se) 4 (CZTSSe) thin‐film solar cells requires the development of well‐crystallized light‐absorbing layers. A deep understanding of the role of precursor solution chemistry in film nucleation and crystal growth processes is essential. Insights into these processes enable the development of innovative strategies to enhance absorber quality, minimize detrimental bulk defects, and ultimately improve device performance. This study elucidates the condensation reactions between thiourea and metal cations, as well as the alcoholysis of 2‐methoxyethanol (MOE), at different concentrations of precursor solutions. The primary focus of this study is implementing a simple and environmentally friendly innovative spin‐coating strategy, aimed at optimizing Cu 2 ZnSnS 4 (CZTS) precursor films and adjusting the Se content within the film bulk to promote grain growth during selenization. This strategy effectively improves absorber morphology while suppressing the formation of deep‐level defects, thereby enhancing carrier transport in both interfacial and bulk regions of the absorber layer. Consequently, CZTSSe absorbers with enhanced crystallinity and reduced defects are synthesized, resulting in a solar cell with an impressive efficiency of 14.10%. These findings underscore the potential for creating highly efficient kesterite CZTSSe solar cells through the manipulation of precursor solution chemistry using environmentally friendly solvents.
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