Ge Jie, Yan Yanfa
Department of Physics and Astronomy & Wright Center for Photovoltaics Innovation and Commercialization, The University of Toledo, Toledo, OH 43606, USA; SNU Materials Division for Educating Creative Global Leaders, Seoul National University, Seoul 08826, Republic of Korea.
Department of Physics and Astronomy & Wright Center for Photovoltaics Innovation and Commercialization, The University of Toledo, Toledo, OH 43606, USA.
iScience. 2018 Mar 23;1:55-71. doi: 10.1016/j.isci.2018.02.002. Epub 2018 Mar 8.
Electrodeposition (ED) technology is a low-cost industrial candidate for solar cell fabrication. However, the practical aspects of controlling deposit morphology and composition have not been significantly addressed because of the complex co-plating variables that still need to be understood for multinary alloy ED. This work addresses these practical aspects on how to control composition and deposit morphology using co-electrodeposited kesterite alloy precursors as a case study. The alloy precursors co-plated under the optimized conditions from a mixed thiosulfate-sulfite electrolyte bath show uniform, smooth, and compact film morphology as well as uniform distribution of composition, well suited for efficient kesterite absorbers, finally delivering a CuZnSnS (CZTS) thin-film solar cell with 7.4% efficiency based on a configuration Mo/CZTS/CdS/ZnO/aluminum-doped ZnO. This work underscores that alloy ED, with the advantage of controllable composition and morphology, holds promise for low-cost industrial manufacture of thin-film solar cells.
电沉积(ED)技术是太阳能电池制造领域一种低成本的工业备选方案。然而,由于在多元合金电沉积中仍需了解的复杂共镀变量,控制沉积物形态和成分的实际问题尚未得到显著解决。本研究以共电沉积的硫锡铜矿合金前驱体为例,探讨了如何控制成分和沉积物形态等实际问题。在优化条件下从硫代硫酸盐 - 亚硫酸盐混合电解液中共同镀覆的合金前驱体,呈现出均匀、光滑且致密的薄膜形态以及成分的均匀分布,非常适合用于高效的硫锡铜矿吸收层,最终制备出基于Mo/CZTS/CdS/ZnO/铝掺杂氧化锌结构、效率为7.4%的CuZnSnS(CZTS)薄膜太阳能电池。这项工作强调,具有成分和形态可控优势的合金电沉积技术,在低成本工业制造薄膜太阳能电池方面具有广阔前景。