Cross‐Linkable Fullerene Enables Elastic and Conductive Grain Boundaries for Efficient and Wearable Tin‐Based Perovskite Solar Cells

富勒烯 材料科学 钙钛矿(结构) 导电体 晶界 光电子学 可穿戴计算机 纳米技术 复合材料 化学 冶金 结晶学 计算机科学 微观结构 嵌入式系统 有机化学
作者
Enlong Hou,Jingfu Chen,Jiefeng Luo,Yuteng Fan,Chao Sun,Yu Ding,Peng Xu,Hui Zhang,Shuo Cheng,Xinjing Zhao,Liqiang Xie,Jiawei Yan,Chengbo Tian,Zhanhua Wei
出处
期刊:Angewandte Chemie [Wiley]
卷期号:63 (20): e202402775-e202402775 被引量:26
标识
DOI:10.1002/anie.202402775
摘要

Tin-based perovskite solar cells (TPSCs) have received increasing attention due to their low toxicity, high theoretical efficiency, and potential applications as wearable devices. However, the inherent fast and uncontrollable crystallization process of tin-based perovskites results in high defect density in the film. Meanwhile, when fabricated into flexible devices, the prepared perovskite film exhibits inevitable brittleness and high Young's modulus, seriously weakening the mechanical stability. In this work, we design and synthesize a cross-linkable fullerene, thioctic acid functionalized C60 fulleropyrrolidinium iodide (FTAI), which has multiple interactions with perovskite components and can finely regulate the crystallization quality of perovskite film. The obtained perovskite film shows an increased grain size and a more matched energy level with the electron transport material, effectively improving the carrier extraction efficiency. The FTAI-based rigid device achieves a champion efficiency of 14.91 % with enhanced stability. More importantly, the FTAI located at the perovskite grain boundaries could spontaneously cross-link during the perovskite annealing process, which effectively improves the conductivity and elasticity of grain boundaries, thereby giving the film excellent bending resistance. Finally, the FTAI-based wearable device yields a record efficiency of 12.35 % and displays robust bending durability, retaining about 90 % of the initial efficiency after 10,000 bending times.
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