材料科学
串联
分子间力
共价键
单层
氢键
化学物理
非阻塞I/O
纳米技术
钙钛矿(结构)
能量转换效率
非共价相互作用
自组装单层膜
化学工程
光伏系统
光电子学
最大功率原理
作者
Jie Yang,Sinuo Chen,L Wang,Shumao Wang,Zixin Lei,Yong Wang,Tong Jin,Xiaowei Li,Xixi Huang,Su Zhou,Wenjing Wang,Lei Zhao,Zijia Li,Wenping Yin,Yuhua Zuo,Chunlan Zhou
摘要
ABSTRACT Conventional phosphonic acid‐based SAMs, exemplified by [4‐(3,6‐dimethoxy‐9H‐carbazol‐9‐yl)butyl]phosphonic acid (MeO‐4PACz), readily aggregate, leading to non‐uniform buried‐interface coverage and constrained device output. Here, we engineer co‐assembled SAMs (Co‐SAMs) by co‐assembling MeO‐4PACz with trimethoxysilane‐anchored terminal siloxanes—epoxy (GOPS), thiol (TMSPT) and isocyanate (IPTMS)—to homogenize the NiO x /perovskite contact. The resulting Co‐SAMs form denser and more uniform interfacial layers on NiO x , boosting the open‐circuit voltage ( V oc ) and fill factor (FF) of 1.68 eV wide‐bandgap perovskite solar cells, with IPTMS‐based Co‐SAMs delivering the largest improvement. Performance correlates with a distinct evolution of siloxane‐mediated intermolecular interactions. We demonstrate that the evolution of intermolecular interactions from physical blending (MeO4‐GOPS) and specific hydrogen bonding (MeO4‐TMSPT) to covalent bridging (MeO4‐IPTMS) significantly enhances interfacial quality. Specifically, the phosphonate–carbamate covalent bridge formed in MeO4‐IPTMS most effectively suppresses aggregation and delivers synergistic defect passivation. Leveraging this strategy, monolithic perovskite/silicon tandem cells deliver a champion power conversion efficiency (PCE) of 33.74% (certified 33.37%). Furthermore, the devices exhibit exceptional stability, showing negligible degradation after 4000 h of dark storage and retaining 87.12% of their initial PCE after 1000 h of maximum power point tracking (MPPT) under continuous one‐sun illumination, highlighting the potential of this interfacial strategy for highly stable tandem photovoltaics.
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