钙钛矿(结构)
材料科学
能量转换效率
电导率
图层(电子)
光电子学
溶解度
碘化物
电子迁移率
化学工程
纳米技术
无机化学
化学
物理化学
工程类
作者
Jingsong Sun,Ningjun Zhang,Jiarui Wu,Weichuang Yang,Haiyan He,Mianji Huang,Yuheng Zeng,Xi Yang,Zhiqin Ying,Ganghua Qin,Chunhui Shou,Jiang Sheng,Jichun Ye
标识
DOI:10.1021/acsami.2c18120
摘要
CuSCN has been widely considered a promising candidate for low-cost and high-stable hole transport material in perovskite semitransparent solar cells (STSCs). However, the low conductivity of the solution-processed CuSCN hole transport layer (HTL) hinders the hole extraction and transport in devices, which makes it hard to achieve devices with high performance. Herein, we report a facile additive engineering approach to optimize the p conductivity of CuSCN HTLs in perovskite STSCs. The n-butylammonium iodide additive facilitates the formation of Cu2+ and generates more Cu vacancies in the CuSCN HTL. This realizes a significant enhancement of the hole concentration and p conductivity of the film. Moreover, the additive improves the solubility of the CuSCN precursor solution and results in a uniform coverage on the perovskite active layer. Therefore, the perovskite STSC with a high power conversion efficiency (PCE) of 19.24% has been achieved, which is higher than that of the spiro-OMeTAD (18.83%) and CuSCN (17.45%) counterparts. In addition, the unencapsulated CuSCN-based device retains 87.5% of the initial PCE after 20 days in the ambient atmosphere.
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