三元运算
有机太阳能电池
位阻效应
材料科学
噻吩
形态学(生物学)
能量转换效率
聚合物太阳能电池
联动装置(软件)
聚合物
工作(物理)
化学工程
芳香性
纳米技术
化学物理
纳米尺度
自组装
化学
扭转(腹足类)
三元数制
作者
Jing Lv,Guoqing Lin,Xinyue Xu,Dong Han,Xinqi Xu,Deyu Liu,Mingliang Sun
出处
期刊:Small
[Wiley]
日期:2026-06-05
卷期号:: e74103-e74103
摘要
Inadequate control over aggregation and morphology evolution remains a major constraint in ternary organic solar cells (TOSCs). To address this, two small-molecule donors, C1 and C2, were designed with identical backbones but distinct aromatic connecting units: a phenyl linkage in C1 and a thiophene linkage in C2. It is revealed that steric torsion is utilized by the phenyl linkage in C1 to suppress excessive self-aggregation and induce balanced, mixed-orientation molecular packing. In contrast, the thiophene linkage in C2 promotes a coplanar backbone with tighter, predominantly face-on π-π stacking, leading to over-crystallization. Consequently, C1 facilitates finer interpenetrating networks with redistributed π-π interactions, supporting efficient in-plane charge transport. Benefiting from this optimized morphology and favorable energy alignment, the PM6:Y6:C1 device achieves an outstanding Fill Factor (FF) of 77.90% and a Power Conversion Efficiency (PCE) of 17.98%, significantly outperforming binary devices and the C2-based ternary devices. This work establishes aromatic connecting unit modulation as a pivotal strategy for precisely controlling aggregation and nanoscale morphology in high-performance TOSCs.
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