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铯提高了基于溴化铅钙钛矿的太阳能电池的长期稳定性。

Cesium Enhances Long-Term Stability of Lead Bromide Perovskite-Based Solar Cells.

作者信息

Kulbak Michael, Gupta Satyajit, Kedem Nir, Levine Igal, Bendikov Tatyana, Hodes Gary, Cahen David

机构信息

Department of Materials & Interfaces and ‡Department of Chemical Research Support, Weizmann Institute of Science , Rehovot, 76100, Israel.

出版信息

J Phys Chem Lett. 2016 Jan 7;7(1):167-72. doi: 10.1021/acs.jpclett.5b02597. Epub 2015 Dec 28.

Abstract

Direct comparison between perovskite-structured hybrid organic-inorganic methylammonium lead bromide (MAPbBr3) and all-inorganic cesium lead bromide (CsPbBr3), allows identifying possible fundamental differences in their structural, thermal and electronic characteristics. Both materials possess a similar direct optical band gap, but CsPbBr3 demonstrates a higher thermal stability than MAPbBr3. In order to compare device properties, we fabricated solar cells, with similarly synthesized MAPbBr3 or CsPbBr3, over mesoporous titania scaffolds. Both cell types demonstrated comparable photovoltaic performances under AM1.5 illumination, reaching power conversion efficiencies of ∼6% with a poly aryl amine-based derivative as hole transport material. Further analysis shows that Cs-based devices are as efficient as, and more stable than methylammonium-based ones, after aging (storing the cells for 2 weeks in a dry (relative humidity 15-20%) air atmosphere in the dark) for 2 weeks, under constant illumination (at maximum power), and under electron beam irradiation.

摘要

对钙钛矿结构的有机-无机杂化甲基溴化铅(MAPbBr3)和全无机溴化铯铅(CsPbBr3)进行直接比较,有助于确定它们在结构、热学和电子特性方面可能存在的根本差异。这两种材料都具有相似的直接光学带隙,但CsPbBr3表现出比MAPbBr3更高的热稳定性。为了比较器件性能,我们在介孔二氧化钛支架上制备了分别由类似合成的MAPbBr3或CsPbBr3构成的太阳能电池。在AM1.5光照下,两种电池类型都表现出相当的光伏性能,以聚芳基胺基衍生物作为空穴传输材料时,功率转换效率达到约6%。进一步分析表明,在老化(将电池在黑暗中干燥(相对湿度15 - 20%)的空气气氛中储存2周)2周后,在恒定光照(最大功率)和电子束辐照下,基于Cs的器件与基于甲基铵的器件效率相当且更稳定。

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