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Impact of Sn(S,Se) Secondary Phases in Cu2ZnSn(S,Se)4 Solar Cells: a Chemical Route for Their Selective Removal and Absorber Surface Passivation

机译:Cu2ZnSn(S,Se)4太阳能电池中Sn(S,Se)次级相的影响:选择性去除和吸收剂表面钝化的化学路线

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The controland removal of secondary phases is one of the major challenges for the development of Cu2ZnSn(S,Se)4 (CZTSSe)-based solar cells. Although etching processes have been developed for Cu(S,Se), Zn(S,Se), and CuSn(S,Se) secondary phases, so far very little attention has been given to the role of Sn(S,Se). In this paper, we report a chemical route using a yellow (NH4)2S solution to effectively remove Sn(S,Se). We found that Sn(S,Se) can form on the surface; either because of stoichiometric deviation or by condensation. After etching, the efficiency of devices typically increases between 20 and 65% relative to the before etch efficiencies. We achieved a maximum 5.9% efficiency in Se-rich CZTSSe-based devices. It is confirmed that this feature is related not only to the removal of Sn(S,Se) but also to the unexpected passivation of the surface. We propose a phenomenological model for this passivation, which may open new perspectives for the development of CZTSSe-based solar cells.
机译:次级相的控制和去除是基于Cu2ZnSn(S,Se)4(CZTSSe)的太阳能电池开发的主要挑战之一。尽管已经开发了针对Cu(S,Se),Zn(S,Se)和CuSn(S,Se)第二相的蚀刻工艺,但到目前为止,很少有人关注Sn(S,Se)的作用。在本文中,我们报告了使用黄色(NH4)2S溶液有效去除Sn(S,Se)的化学路线。我们发现Sn(S,Se)可以在表面形成。要么是由于化学计量的偏差,要么是由于冷凝。蚀刻后,器件的效率通常比蚀刻前的效率提高20%至65%。我们在富含硒的CZTSSe基器件中实现了最高5.9%的效率。可以肯定的是,该特征不仅与去除Sn(S,Se)有关,而且与表面的意外钝化有关。我们提出了这种钝化的现象学模型,这可能为基于CZTSSe的太阳能电池的开发打开新的视野。

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