电子受体
动力学
结晶
接受者
化学工程
材料科学
有机太阳能电池
电子供体
化学
光化学
电子衍射
太阳能电池
电子传输链
二聚体
侧链
光谱学
激子
扩散
电子转移
聚合物结晶
光活性层
聚合物太阳能电池
聚合物
作者
Wenkui Wei,Xiyue Yuan,Xia Zhou,Yao Li,Seunglok Lee,Jianbo Xu,Yue Zhang,Haozhe Feng,Qiuju Jiang,Jiaying Wu,Changduk Yang,Xiaotao Hao,Fei Huang,Yong Cao,Chunhui Duan
标识
DOI:10.1002/ange.202517485
摘要
Abstract Achieving high power conversion efficiencies (PCEs) with low‐cost active layer materials is of vital importance for organic solar cell (OSC) commercialization. However, the PCEs afforded by currently reported low‐cost electron acceptors remain substantially limited. Herein, we report the regulation of molecular crystallization and film formation kinetics of the low‐cost electron acceptors with A–DA'D–A‐type pentacyclic fused‐ring structures and achieved an impressive PCE of 18.04% and a tiptop figure‐of‐merit (FOM) of 0.363, representing the best‐known values for OSCs. Single crystal X‐ray diffraction studies indicate that the long and flexible side chain on the central core could hinder the unfavorable dimer formation of electron acceptors and lead to three‐dimensional network packing, which is critical for exciton diffusion and charge transport. Moreover, the in situ optical spectroscopy revealed that the side chain elongation of the electron acceptor could slow the film formation kinetics of the small molecular acceptor while accelerating those of the polymer donor, which is conducive to forming bi‐continuous interpenetrating fibril networks with better intermixing. This work demonstrates that low‐cost, simple‐structured fused‐ring electron acceptors hold a bright future in the OSC commercialization.
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