钙钛矿(结构)
材料科学
晶界
光伏系统
微晶
极限抗拉强度
光伏
微观结构
能量转换效率
粒度
复合材料
钙钛矿太阳能电池
纳米技术
灵活性(工程)
金属
拉伸试验
光电子学
薄膜
作者
Zhiyang Xu,Runnan Yu,Qianglong Lv,Haoran Jia,Qiang Guo,Tangyue Xue,R.Z. Wang,Huaizhi Gao,Erjun Zhou,Zhan’ao Tan
标识
DOI:10.1038/s41467-025-67027-6
摘要
Flexible perovskite solar cells show promise in photovoltaics due to their high energy-to-power efficiency and adaptability, making them a top choice for third-generation thin-film solar applications. However, the inherent defect and mechanical fragility of polycrystalline films posed a challenge that limited their photovoltaic and mechanical performance. Here, the nanomechanical properties of perovskite films are regulated to varying degrees by introducing metal chelates. Specifically, the metal chelates are embedded into the grain boundaries of perovskite, thereby creating a uniformly distributed tensile strain field. Through nanomechanical investigations of the tensile strain-induced modifications in the microstructure and photovoltaic performance of perovskite films, the flexible perovskite solar cells achieve a power conversion efficiency of 24.47%. This regulation strategy not only focuses on the nanomechanical properties of perovskite films but also reveals the correlation between the physical properties and the mechanical flexibility of perovskite solar cells.
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