物理化学学报 >> 2026, Vol. 42 >> Issue (10): 100229.doi: 10.1016/j.actphy.2025.100229

所属专题: 太阳能转化与储存

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双缆共轭聚合物中的间隔基异构化工程用于优化分子堆积和增强光伏性能

张文浩, 方海盛*(), 刘丽娟, 汤怀皓, 肖承义, 李韦伟*()   

  1. 北京化工大学, 北京软物质科学与工程高精尖创新中心, 有机无机复合材料国家重点实验室, 北京 100029
  • 收稿日期:2025-10-19 修回日期:2025-11-27 录用日期:2025-12-10 发布日期:2026-09-03
  • 通讯作者: Email: 2021410015@mail.buct.edu.cn (方海盛)liweiwei@iccas.ac.cn (李韦伟)

Spacer isomerization engineering in double-cable conjugated polymers for optimized molecular packing and enhanced photovoltaic performance

Wenhao Zhang, Haisheng Fang*(), Lijuan Liu, Huaihao Tang, Chengyi Xiao, Weiwei Li*()   

  1. Beijing Advanced Innovation Center for Soft Matter Science and Engineering, State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China
  • Received:2025-10-19 Revised:2025-11-27 Accepted:2025-12-10 Published:2026-09-03
  • Contact: Email: 2021410015@mail.buct.edu.cn (Haisheng Fang)liweiwei@iccas.ac.cn (Weiwei Li)

摘要:

双缆共轭聚合物由给体主链与受体侧链构成,二者通过较长的柔性间隔基连接,而连接位置对聚合物的物理化学性质具有显著影响。本研究通过间隔基异构化工程设计并合成了两种间隔基分别连接在茚酮苯环的对位和邻位上的化合物,分别称为ZP-1和ZP-2。研究发现,将取代位置从邻位(ZP-2)调整至对位(ZP-1),可实现更优的分子堆积并提高薄膜结晶度。这种结构优化促进了激子解离与电荷传输过程,使得基于ZP-1的器件在短路电流密度和填充因子上均显著提升。最终,ZP-1器件实现了10.43%的功率转换效率(PCE),性能优于ZP-2。此外,两种聚合物均展现出优异的热稳定性:经过外推时间8000 h连续热老化后,仍能保持初始PCE的80%以上。值得注意的是,当ZP-1作为第三组分掺入D18:BTP-eC9二元共混体系时,可有效优化给体-受体界面,使器件实现了19.81%的高PCE。本研究为高效稳定的单组分有机太阳能电池及新型三元体系的合理设计提供了宝贵见解。

关键词: 有机太阳能电池, 双缆共轭聚合物, 间隔基异构化工程, 分子堆积

Abstract:

Double-cable conjugated polymers consist of a donor backbone and acceptor side chains linked by a long, flexible spacer. While this molecular design offers a promising solution to address the thermal instability and phase separation issues inherent in conventional binary blend systems, the development of high-performance double-cable polymers faces multiple significant challenges. The synthetic complexity is considerably high, requiring multi-step functionalization to attach the spacer to the acceptor unit, which often results in low yields and difficulties in purification. Moreover, the selection of suitable acceptor materials is severely limited, as only a narrow range of acceptors possess appropriate sites for spacer attachment while maintaining their intrinsic electronic properties. This limitation greatly restricts the exploration of material combinations and the potential for performance breakthroughs. Another critical yet underexplored challenge lies in the precise engineering of the spacer itself. Although studies have investigated the effect of spacer length, the role of spacer attachment position—a subtle but crucial structural parameter—remains poorly understood. This study designed and synthesized two such polymers, ZP-1 (with the spacer attached at the para-positions of the indenone benzene ring) and ZP-2 (at the ortho-positions), through spacer isomerization engineering. Investigations reveal that shifting the substitution from the ortho-(ZP-2) to the para-position (ZP-1) optimizes favorable molecular packing and enhances film crystallinity. This structural optimization facilitates exciton dissociation and charge transport, resulting in a significant improvement in the short-circuit current density and fill factor for ZP-1-based devices. Consequently, a power conversion efficiency (PCE) of 10.43% has been achieved, outperforming ZP-2 (9.44%). Furthermore, both polymers exhibit excellent thermal stability, retaining over 80% of their initial PCE after 8, 000 h of continuous thermal aging. Notably, when incorporated as a third component into the D18:BTP-eC9 binary blend, ZP-1 effectively optimizes the donor-acceptor interface, leading to a simultaneous enhancement in short-circuit current density (JSC) and fill factor (FF) and a high PCE of 19.81%. This improvement is attributed to its templating effect during film formation and the promotion of charge generation at the optimized interface. The ternary device also demonstrates significantly enhanced thermal stability compared to the binary counterpart. This work provides valuable insights for the rational design of efficient and stable single-component organic solar cells, as well as novel ternary systems, by highlighting spacer isomerization engineering—specifically, the precise control of linkage position—as a powerful strategy to tailor molecular packing, crystallinity, and ultimate device performance.

Key words: Organic solar cells, Double-cable conjugated polymer, Spacer isomerization engineering, Molecular packing