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探究掺银铜锌锡硫吸收层中缺陷钝化的纳米级电荷输运和局部表面电势分布。

Nanoscale charge transport and local surface potential distribution to probe defect passivation in Ag doped CuZnSnS absorbing layer.

机构信息

Functional and Renewable Energy Materials Laboratory, Department of Physics, Indian Institute of Technology Ropar, Punjab 140001, India.

出版信息

Nanotechnology. 2019 Feb 8;30(6):065706. doi: 10.1088/1361-6528/aaf185.

Abstract

The performance of earth abundant CuZnSnS (CZTS) material is limited by high deficit of open circuit voltage (V) which is mainly due to the easy formation of Cu antisite defects. Suppression of Cu defects is thus inevitably required for further developments in CZTS based solar cells. We studied systematic increase of Ag doping in CZTS thin film and investigated the nanoscale electrical properties using Kelvin probe force microscopy and current sensing atomic force microscopy (CAFM) to probe Cu defects. Crystallographic analysis indicated the successful partial substitution of Cu ions by large size Ag ions. The considerable decrease in grain boundary potential from 66.50 ± 5.44 mV to 13.50 ± 2.61 mV with Ag doping, suggesting the substantial decrease in Cu defects. Consequently, CAFM measurement confirms the remarkable increment in minority carrier current with Ag doping and their local mobility in CZTS layer. Finally, the lower persistent photoconductivity and fast decay response of photogenerated carriers for Ag doped CZTS photodetector further validate our results. This study provides a fresh approach of controlling deleterious Cu defects in CZTS by tuning Ag content that may guide researchers to develop next generation high-performance CZTS based solar cells.

摘要

CZTS 材料的性能受到开路电压(V)高亏缺的限制,这主要是由于 Cu 反位缺陷的易形成。因此,为了进一步开发基于 CZTS 的太阳能电池,必须抑制 Cu 缺陷。我们研究了 CZTS 薄膜中 Ag 掺杂的系统增加,并使用 Kelvin 探针力显微镜和电流感应原子力显微镜(CAFM)研究纳米级电特性来探测 Cu 缺陷。晶体学分析表明,大尺寸 Ag 离子成功地部分取代了 Cu 离子。Ag 掺杂后晶粒间界势从 66.50 ± 5.44 mV 显著降低到 13.50 ± 2.61 mV,表明 Cu 缺陷的大量减少。因此,CAFM 测量证实了 Ag 掺杂后少数载流子电流的显著增加及其在 CZTS 层中的局部迁移率。最后,Ag 掺杂 CZTS 光电探测器的低持续光致导电性和光生载流子的快速衰减响应进一步验证了我们的结果。本研究提供了一种通过调节 Ag 含量来控制 CZTS 中有害 Cu 缺陷的新方法,这可能为研究人员开发下一代高性能基于 CZTS 的太阳能电池提供指导。

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