材料科学
降级(电信)
光伏系统
串联
钙钛矿(结构)
温度循环
钝化
热稳定性
光致发光
相(物质)
自行车
能量转换效率
热的
化学工程
纳米技术
理论(学习稳定性)
工作(物理)
化学物理
拉伤
光电子学
光伏
散射
太阳能
作者
Kun Sun,Renjun Guo,Qilin Zhou,Lingyi Fang,Xiongzhuo Jiang,S.A. Wegener,Yuxin Liang,Z. Li,Suzhe Liang,Matthias Schwartzkopf,Erkan Aydin,Sarathlal Koyiloth Vayalil,Stephan V. Roth,Ulrich W. Paetzold,P. Müller-Buschbaum
标识
DOI:10.1038/s41467-025-68219-w
摘要
Temperature variations can induce phase transformations and strain in perovskite solar cells (PSCs), undermining their structural stability and device performance. Despite growing interest, the operational stability of triple-cation wide-bandgap (WBG) PSCs and tandem solar cells (TSCs) under rapid solar-thermal cycling remains poorly understood. Here, we investigate the operational stability of WBG PSCs (~1.68 eV) with a champion power conversion efficiency (PCE) of 24.31% and extend the study to TSCs. We find that degradation during device operation under rapid solar-thermal cycling (temperature change rate of 10 °C/min) is independent of passivation and occurs in two distinct regimes: an initial burn-in phase, which accounts for a rapid 60% relative loss in performance, followed by a steady degradation characterized by temperature-dependent fluctuations in photovoltaic parameters. By operando grazing-incidence wide-angle X-ray scattering and photoluminescence measurements, we reveal that temperature-induced strain, phase transition, and the increased non-radiative recombination collectively contribute to the degradation of PSCs. This work advances the understanding of the degradation mechanisms of WBG PSCs and TSCs, providing insights toward improving their operational thermal stability for real-world applications.
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