材料科学
吡嗪
有机太阳能电池
共聚物
三元运算
混溶性
相容性(地球化学)
纳米技术
化学工程
能量转换效率
聚合物太阳能电池
合理设计
溶剂
有机溶剂
分子内力
光伏系统
科技与社会
作者
Wenwen Hou,Jingnan Wu,Bo Cheng,Chenyu Han,Fengbo Sun,Yumiao Huo,Hao Wang,Jun Sun,Lixuan Kan,Leandro R. Franco,Xinxin Xia,Feng Liu,Ergang Wang,Xia Guo,Yongfang Li,Maojie Zhang
标识
DOI:10.1002/adma.202522228
摘要
Balancing high performance, morphological controllability, and compatibility with non-halogenated solvent processing remains a critical bottleneck for scalable and sustainable organic solar cells (OSCs). Herein, we address this challenge via rational terpolymer design: integrating a siloxane-functionalized electron-deficient pyrazine unit (DTCPz-SiO) into the benchmark D18 backbone, with the optimized terpolymer DN1 containing 5 mol% DTCPz-SiO. DTCPz-SiO imparts two key synergies: (i) enhanced conformational rigidity and intramolecular noncovalent interactions (N···S, N···H), which improve backbone planarity, strengthen π-π stacking, and accelerate crystallization; (ii) synergistic regulation of donor-acceptor miscibility and compatibility with non-halogenated solvents. These effects collectively enable a well-optimized bulk-heterojunction morphology with enhanced molecular ordering and charge dynamics. Consequently, DN1-based binary devices deliver a significantly improved power conversion efficiency (PCE) of 20.1% compared to 18.7% for the parent polymer, together with a broadened processing window. Notably, high efficiencies of ∼19.5% are retained under common non-halogenated processing conditions. Furthermore, DN1-based ternary OSCs enhance PCE to outstanding values of 20.9% and 20.0% under chlorinated and non-halogenated processing conditions, respectively, among the highest efficiencies reported for single-junction OSCs. Overall, this work establishes siloxane-functionalized terpolymers as an effective molecular design strategy for regulating multi-scale morphology and processing tolerance, providing new insights for the development of scalable OSC systems.
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