材料科学
钙钛矿(结构)
光伏
残余应力
兴奋剂
光伏系统
能量转换效率
纳米技术
光电子学
耐久性
图层(电子)
工作(物理)
复合材料
拉伤
压力(语言学)
功率密度
作者
Yang Zhong,Xiao Luo,Bing Gao,Xueying Wang,Gengling Liu,Wangping Sheng,Zhiwei Ren,Gang Li,Licheng Tan,Yiwang Chen
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-04-10
卷期号:12 (15)
标识
DOI:10.1126/sciadv.aec3238
摘要
Flexible perovskite solar cells (PVSCs) are promising for next-generation photovoltaic due to their lightweight and flexibility. However, nonuniform out-of-plane strain from heterogeneous A-site doping and residual stress from PbI 2 -rich surfaces limits their long-term stability and mechanical robustness. Here, we demonstrate that optimized A-site doping reduces defect density and microstrain, improving compositional homogeneity. Advanced visualization of out-of-plane strain reveals key pathways for strain homogenization. Additionally, an in situ–formed 2D perovskite layer on PbI 2 -rich surface effectively relieves residual stress, promotes interfacial carrier transport, and strengthens the mechanical property of perovskite film. Consequently, we achieve champion power conversion efficiencies of 26.59% for rigid and 25.88% (certified 25.55%) for flexible PVSCs. Furthermore, large-area flexible modules obtain impressive efficiencies of 21.77% (25 square centimeters) and 19.23% (100 square centimeters). Unencapsulated flexible devices retain 97.8% initial efficiency after 2000 hours of operation tracking (ISOS-L-1) while also demonstrating outstanding durability in damp-heat, thermal cycling, and mechanical tests. This work provides critical foundation for advancing the commercialization of flexible PVSCs.
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