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一种无铟锡氧化物的硫系太阳能电池。

An ITO-Free Kesterite Solar Cell.

作者信息

Ji Yixiong, Chen Wangxian, Yan Di, Bullock James, Xu Yang, Su Zhenghua, Yang Wentong, Laird Jamie Stuart, Zheng Tian, Wu Na, Zha Wusong, Luo Qun, Ma Chang-Qi, Smith Trevor A, Liu Fangyang, Mulvaney Paul

机构信息

ARC Centre of Excellence in Exciton Science, School of Chemistry, University of Melbourne, Victoria, 3010, Australia.

School of Metallurgy and Environment, Central South University, Changsha, 410083, China.

出版信息

Small. 2024 Feb;20(6):e2307242. doi: 10.1002/smll.202307242. Epub 2023 Sep 28.

Abstract

Photovoltaic thin film solar cells based on kesterite Cu ZnSn(S, Se) (CZTSSe) have reached 13.8% sunlight-to-electricity conversion efficiency. However, this efficiency is still far from the Shockley-Queisser radiative limit and is hindered by the significant deficit in open circuit voltage (V ). The presence of high-density interface states between the absorber layer and buffer or window layer leads to the recombination of photogenerated carriers, thereby reducing effective carrier collection. To tackle this issue, a new window structure ZnO/AgNW/ZnO/AgNW (ZAZA) comprising layers of ZnO and silver nanowires (AgNWs) is proposed. This structure offers a simple and low-damage processing method, resulting in improved optoelectronic properties and junction quality. The ZAZA-based devices exhibit enhanced V due to the higher built-in voltage (V ) and reduced interface recombination compared to the usual indium tin oxide (ITO) based structures. Additionally, improved carrier collection is demonstrated as a result of the shortened collection paths and the more uniform carrier lifetime distribution. These advances enable the fabrication of the first ITO-free CZTSSe solar cells with over 10% efficiency without an anti-reflective coating.

摘要

基于硫铜锡锌矿Cu ZnSn(S, Se)(CZTSSe)的光伏薄膜太阳能电池的光电转换效率已达到13.8%。然而,这一效率仍远低于肖克利-奎塞尔辐射极限,并且受到开路电压(V )显著不足的阻碍。吸收层与缓冲层或窗口层之间存在高密度界面态会导致光生载流子复合,从而减少有效载流子收集。为解决这一问题,提出了一种由氧化锌层和银纳米线(AgNWs)组成的新型窗口结构ZnO/AgNW/ZnO/AgNW(ZAZA)。这种结构提供了一种简单且低损伤的加工方法,从而改善了光电性能和结质量。与通常的基于氧化铟锡(ITO)的结构相比,基于ZAZA的器件由于具有更高的内建电压(V )和更低的界面复合而表现出增强的V 。此外,由于收集路径缩短和载流子寿命分布更均匀,证明了载流子收集得到改善。这些进展使得能够制造出首款效率超过10%且无抗反射涂层的无ITO CZTSSe太阳能电池。

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