Pseudo‐Arch Bridge‐Inspired Stress Modulation at Buried Interface for Stable High‐Efficiency Perovskite Solar Cells
作者:Jie Gao, Jihong Wu, Dong Wei, Naize Chen, Pengxiang Wang, Xiaozhen Huang, Xiafeng He, Shidong Cai, Xuran Wang, Yidi Zhao, Xiaodan Li, Guilin Chen, Zhiling Luo, Hongxiang Li, Mingwei An, Wei Huang, Yang Wang, Dandan Song · 发表于:Advanced Materials · 年份:2025 · DOI:10.1002/adma.202513975 · 被引用次数:8 · 研究领域:Perovskite Materials and Applications、Conducting polymers and applications、Quantum Dots Synthesis And Properties
Abstract Thermal instability remains a key barrier to the commercialization of perovskite solar cells (PSCs), largely due to severe thermomechanical mismatch at the buried interface between the perovskite and transport layers. This mismatch induces interfacial strain, triggering deep‐level defects, ion migration, and phase segregation that severely impair device stability. Here, a thermomechanical stress engineering strategy is introduced via rational molecular interface design. Specifically, a novel molecule, 4‐(5,6‐difluoro‐2‐(pyridin‐2‐yl)‐1H‐benzo[d]imidazol‐1‐yl)butan‐1‐ammonium iodide (FBI‐PyAI) is synthesized, that anchors at the TiO 2 /perovskite interface likely in a unique “molecular bridge” configuration. This soft interface yields an extremely low modulus and significantly reduces the interfacial stress energy from 0.554 to 0.178 eV, thereby suppressing defect formation and minimizing phase segregation. Meanwhile, the functional groups in FBI‐PyAI passivate defects and induce vertically oriented perovskite crystallization, forming compact films with fewer voids and improved structural uniformity. As a result, the modified devices achieve exceptional thermal stability, which maintains 88% of initial efficiency after 50 thermal cycles (−15 to 65 °C). Moreover, the modified PSC delivers a competitive efficiency of 25.01% and outstanding photostability (95% retention after 800 h illumination under ISOS‐L‐1 protocol). This work offers mechanistic insight into interfaci...