材料科学
单体
阴极
共聚物
有机太阳能电池
聚合物
结晶度
钙钛矿(结构)
聚合物太阳能电池
平面的
光伏系统
共轭体系
分子间力
光电子学
化学工程
光电效应
太阳能电池
能量转换效率
热的
四苯乙烯
光化学
热稳定性
高分子化学
结晶学
电子
作者
Yinuo yang,Jiaxin Liu,Song Jiali,Xiaopeng Duan,Jiawei Deng,Haisheng Ma,Jie Liu,Zhihui Gao,Xianqiang Xie,Guanghao Lu,Jianqi Zhang,Zhaoyang Chu,Xiaotian Hu,Yan Li,Yan-ming Sun
标识
DOI:10.1002/anie.202523043
摘要
Abstract A series of PDI‐based monomers and cross‐coupled copolymers have been reported recently, exhibiting excellent photoelectric performance as cathode interfacial layers (CILs) in organic solar cells (OSCs). However, the problems of high crystallinity for monomers and poor batch‐to‐batch repeatability for copolymers are still unresolved, which inspire the probe to the size of PDI‐based materials. Herein, PDI‐based homo‐oligomers, namely single‐bond‐linked perylene‐diimide dimers (S‐di(PDI)s) were designed and synthesized. Compared with PDI monomers, S‐di(PDI)s not only retain the large planar conjugated backbone of PDI subunits, but also exhibit a cross conformation between two PDI blades, which is beneficial for maintaining excellent electron transporting capability while reducing intermolecular excessive aggregation and achieving outstanding optical and thermal stabilities. Among them, the binary devices of D18:L8‐BO fabricated with S‐di(PDI)‐NBr CIL achieve a remarkable PCE of 20.53%, even higher than devices fabricated with copolymer PNDIT‐F3N that is widely used as CIL in state‐of‐the‐art OSC system. Meanwhile, perovskite solar cells (PSCs) based on S‐di(PDI)‐NBr CIL also achieved an outstanding PCE of 26.53%, much higher than PSCs based on C 60 CIL.
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