Ye Yuan, Xing Tang, Weidong Lin, Jiahao Liu, Pan Li, Huiyan Chen, Hanbo Zhu, Peng Ran, Ziyan Jia, Juan Hui, Xuehui Xu, Yang Michael Yang
Precise regulation of interfacial charge transport dynamics and perovskite crystallization kinetics is critical for fabricating high-performance inverted (p-i-n) perovskite solar cells (PSCs). In this work, we engineered a novel self-assembled monolayer (SAM), SPA, featuring an electron-donating triphenylamine (TPA) core integrated with cyano and peripheral methylthio (−SCH 3 ) functional groups. Unlike the conventional Me-4PACz, SPA establishes a robust dual-site coordination with undercoordinated Pb 2+ ions, as evidenced by significant red-shifts in FTIR stretching vibrations and binding energy shifts in XPS. This dual-functional interaction not only effectively passivates buried traps but also dictates crystallization kinetics, yielding high-quality perovskite films with monolithic grains and a highly preferred [h00] orientation. Consequently, SPA-based inverted PSCs achieve a champion power conversion efficiency (PCE) of 26.13% alongside a remarkable fill factor of 85.87%. Furthermore, this robust chemical anchoring translates into exceptional operational stability; unencapsulated devices maintained over 80% of their initial PCE for ∼460 h under continuous AM 1.5G illumination at ∼65 °C under open-circuit conditions.