Co-deposition of hole-selective contact and absorber for improving the processability of perovskite solar cells

钙钛矿(结构) 材料科学 制作 能量转换效率 可制造性设计 单层 纳米技术 氧化铟锡 润湿 基质(水族馆) 背景(考古学) 光电子学 化学工程 薄膜 电气工程 复合材料 医学 古生物学 海洋学 替代医学 病理 地质学 工程类 生物
作者
Xiaopeng Zheng,Zhen Li,Yi Zhang,Min Chen,Tuo Liu,Chuanxiao Xiao,Danpeng Gao,Jay B. Patel,Darius Kuciauskas,Artiom Magomedov,Rebecca A. Scheidt,Xiaoming Wang,Steven P. Harvey,Zhenghong Dai,Chunlei Zhang,Daniel Morales,Henry Pruett,Brian M. Wieliczka,Ahmad R. Kirmani,Nitin P. Padture
出处
期刊:Nature Energy [Springer Nature]
卷期号:8 (5): 462-472 被引量:284
标识
DOI:10.1038/s41560-023-01227-6
摘要

Simplifying the manufacturing processes of renewable energy technologies is crucial to lowering the barriers to commercialization. In this context, to improve the manufacturability of perovskite solar cells (PSCs), we have developed a one-step solution-coating procedure in which the hole-selective contact and perovskite light absorber spontaneously form, resulting in efficient inverted PSCs. We observed that phosphonic or carboxylic acids, incorporated into perovskite precursor solutions, self-assemble on the indium tin oxide substrate during perovskite film processing. They form a robust self-assembled monolayer as an excellent hole-selective contact while the perovskite crystallizes. Our approach solves wettability issues and simplifies device fabrication, advancing the manufacturability of PSCs. Our PSC devices with positive–intrinsic–negative (p-i-n) geometry show a power conversion efficiency of 24.5% and retain >90% of their initial efficiency after 1,200 h of operating at the maximum power point under continuous illumination. The approach shows good generality as it is compatible with different self-assembled monolayer molecular systems, perovskites, solvents and processing methods. Improving the manufacturability of perovskite solar cells is key to their deployment. Zheng et al. report a one-step deposition of the hole-selective and absorber layers that addresses wettability issues and simplifies the fabrication process.
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