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The role of interparticle heterogeneities in the selenization pathway of Cu Zn Sn S nanoparticle thin films a real time study

机译:粒间非均匀性在Cu Zn sn s纳米粒子薄膜硒化途径中的作用进行了实时研究

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摘要

Real time energy dispersive X ray diffraction EDXRD analysis has been utilized to observe the selenization of Cu Zn Sn S nanoparticle films coated from three nanoparticle populations Cu and Sn rich particles roughly 5 nm in size, Zn rich nanoparticles ranging from 10 to 20 nm in diameter, and a mixture of both types of nanoparticles roughly 1 1 by mass , which corresponds to a synthesis recipe yielding CZTSSe solar cells with reported total area efficiencies as high as 7.9 . The EDXRD studies presented herein show that the formation of copper selenide intermediates during the selenization of mixed particle films can be primarily attributed to the small, Cu and Sn rich particles. Moreover, the formation of these copper selenide phases represents the first stage of the CZTSSe grain growth mechanism. The large, Zn rich particles subsequently contribute their composition to form micrometer sized CZTSSe grains. These findings enable further development of a previously proposed selenization pathway to account for the roles of interparticle heterogeneities, which in turn provides a valuable guide for future optimization of processes to synthesize high quality CZTSSe absorber layers
机译:实时能量色散X射线衍射EDXRD分析已用于观察由三个纳米粒子群覆盖的Cu Zn Sn S纳米粒子膜的硒化,其中Cu和Sn粒子的粒径约为5 nm,Zn纳米粒子的直径范围为10至20 nm ,和两种类型的纳米粒子的混合物大约为1 1质量,这相当于合成配方产生CZTSSe太阳能电池的报告总面积效率高达7.9。本文介绍的EDXRD研究表明,在混合颗粒薄膜硒化过程中,硒化铜中间体的形成主要归因于富含铜和锡的小颗粒。而且,这些硒化铜相的形成代表了CZTSSe晶粒生长机理的第一阶段。随后,富含锌的大颗粒有助于其组成,从而形成微米级的CZTSSe晶粒。这些发现使以前提出的硒化途径得以进一步发展,以解释颗粒间异质性的作用,从而为将来优化合成高质量CZTSSe吸收剂层的工艺提供了宝贵的指导。

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