平面度测试
化学
无定形固体
钙钛矿(结构)
位阻效应
分子
分子间力
基质(水族馆)
化学物理
能量转换效率
聚合物
热稳定性
结晶度
结晶学
钙钛矿太阳能电池
分子动力学
Crystal(编程语言)
化学工程
Atom(片上系统)
晶体结构
光化学
光伏系统
纳米技术
聚合物太阳能电池
热的
小分子
作者
Shantao Zhang,Zheng Liang,Yu Wu,TianAo Hou,Jing Lai,Xinyu Li,Wenxin Dai,Yue Zhang,Hao Mei,Yuan Li,Shuji Ye,Tao Chen,Junfa Zhu,Shuang Chen,Zhimin Fang,Shengzhong Frank Liu,Xu Pan,Shangfeng Yang
摘要
Abstract Self-assembled molecules (SAMs) commonly employed in inverted perovskite solar cells (PSCs) are plagued by severe molecular aggregation that leads to non-uniform substrate coverage, consequently increased interfacial charge recombination and compromised operational stability. To overcome this limitation, we rationally design a novel SAM, (4-(2,7-bis(4-methoxyphenyl)-9,9-dimethylacridin-10(9H)-yl)butyl)phosphonic acid (MeO-PhAPA), featuring a structurally distorted backbone. The core structure of MeO-PhAPA integrates an sp3-hybridized carbon atom bonded to two methyl groups, which imposes pronounced molecular distortion that breaks molecular planarity and effectively suppresses deleterious π-π stacking. Additionally, the single-bond-linked two methoxyphenyl substituents further increase steric hindrance. This tailored molecular design robustly suppresses intermolecular aggregation of MeO-PhAPA, favoring the formation of a uniform, well-wetted amorphous thin film. Concurrently, MeO-PhAPA optimizes interfacial energy level alignment and delivers superior hole-extraction capability. Moreover, compared with the conventional MeO-4PACZ SAM, MeO-PhAPA facilitates the growth of high-quality perovskite films with larger grain sizes, lower defect density, and reduced bulk residual stress. Consequently, inverted PSCs incorporating MeO-PhAPA achieve a champion power conversion efficiency of 26.85% (certified 26.62%), markedly outperforming the control device based on MeO-4PACZ (24.12%). The optimized devices also demonstrate substantially enhanced stability under prolonged operational and thermal stresses.
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