材料科学
结晶度
堆积
电介质
有机太阳能电池
三元运算
混溶性
结晶
电子迁移率
分子间力
能量转换效率
晶格常数
光电子学
化学物理
化学工程
分子
聚合物
衍射
有机化学
光学
复合材料
工程类
物理
化学
程序设计语言
计算机科学
作者
Wei Gao,Baobing Fan,Qi Feng,Francis Lin,Rui Sun,Xinxin Xia,Jinhua Gao,Cheng Zhong,Xinhui Lu,Jie Min,Fujun Zhang,Zonglong Zhu,Jingdong Luo,Alex K.‐Y. Jen
标识
DOI:10.1002/adfm.202104369
摘要
Abstract Herein, asymmetric isomer effects are systematically explored by designing and synthesizing two benzo[ c ][1,2,5]thiadiazole (BT)‐fused nonacyclic electron acceptors. By changing from BP6T‐4F to asymmetric ABP6T‐4F, significantly enhanced dielectric constant and inhibited excessive molecular aggregation and unfavorable edge‐on orientation could be achieved. The reduced exciton binding energy also facilitates a more efficient dissociation process in PM6:ABP6T‐4F compared to PM6:BP6T‐4F with the same energy offset. Moreover, the weaker crystallization behavior enables a significantly enhanced miscibility between PM6 and ABP6T‐4F than that between PM6 and BP6T‐4F, which leads to an optimized micromorphology with smooth surface, suitable domain size, and ordered π–π stacking. Organic solar cells (OSCs) based on PM6:ABP6T‐4F achieve a 15.8% power conversion efficiency (PCE), which is remarkably higher than that of PM6:BP6T‐4F‐based OSCs (6.4%). Furthermore, ternary devices are also fabricated considering good compatibility between ABP6T‐4F and CH1007 to deliver a PCE over 17%. This study reveals the effectiveness and great potential of asymmetric isomerization strategy in regulating molecular properties, which will provide guidance for the future design of non‐fullerene acceptors.
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