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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >The influence of secondary solvents on the morphology of a spiro-MeOTAD hole transport layer for lead halide perovskite solar cells
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The influence of secondary solvents on the morphology of a spiro-MeOTAD hole transport layer for lead halide perovskite solar cells

机译:二次溶剂对卤化卤化铅钙玻璃太阳能电池螺旋微型空穴传输层形态的影响

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摘要

2,2 ',7,7 '-tetrakis(N,N-di-p-methoxyphenylamine)-9,9 '-spirobifluorene (spiro-MeOTAD) has been widely employed as a hole transport layer (HTL) in perovskite-based solar cells. Despite high efficiencies, issues have been reported regarding solution processed spiro-MeOTAD HTL such as pinholes and the strong dependence of electrical properties upon air exposure, which poses challenges for solar cell stability and reproducibility. In this work, we perform a systematic study to unravel the fundamental mechanisms for the generation of pinholes in solution-processed spiro-MeOTAD films. The formation of pinholes is closely related to the presence of small amounts of secondary solvents (e.g. H2O, 2-methyl-2-butene or amylene employed as a stabilizer, absorbed moisture from ambient, etc), which have low miscibility in the primary solvent generally used to dissolve spiro-MeOTAD (e.g. chlorobenzene). The above findings are not only applicable for spiro-MeOTAD (a small organic molecule), but also applicable to polystyrene (a polymer). The influence of secondary solvents in the primary solvents is the main cause for the generation of pinholes on film morphology. Our findings are of direct relevance for the reproducibility and stability in perovskite solar cells and can be extended to many other spin-coated or drop-casted thin films.
机译:2,2',7,7'-左旋(N,N-DI-P-甲氧基甲氧基胺)-9,9'-苯甲嘧啶(螺绒氟胺)已广泛用于基于Perovskite的空穴传输层(HTL)太阳能电池。尽管效率高,但有关解决方案的问题,关于螺旋Meotad HTL,如针孔,电气暴露时的电气性能强大依赖,这带来了太阳能电池稳定性和再现性的挑战。在这项工作中,我们进行系统研究,以解开解决方案加工螺旋电影中针孔的基本机制。针孔的形成与少量次级溶剂的存在密切相关(例如,用作稳定剂的H 2 O,2-甲基-2-丁烯或亚氨基,从环境等中吸收水分等),其在初级溶剂中具有低混溶性通常用于溶解螺肌瘤(例如氯苯)。上述研究结果不仅适用于螺钼(小有机分子),而且适用于聚苯乙烯(聚合物)。二次溶剂在初级溶剂中的影响是在薄膜形态产生针孔的主要原因。我们的发现与钙钛矿太阳能电池中的再现性和稳定性直接相关,并且可以延伸到许多其他旋涂或滴隙薄膜。

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