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通过末端连接的二聚体小分子受体:柔性连接体长度对光伏性能的影响

Dimeric Small Molecule Acceptors via Terminal-End Connections: Effect of Flexible Linker Length on Photovoltaic Performance.

作者信息

Li Zhengkai, Wang Qingyuan, Chen Qi, Meng Shixin, Bai Yang, Xue Lingwei, Xue Jing, Zhang Zhi-Guo

机构信息

State Key Laboratory of Chemical Resource Engineering, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.

College of Chemistry and Pharmaceutical Engineering, Huanghuai University, Zhumadian, Henan, 463000, P. R. China.

出版信息

Macromol Rapid Commun. 2025 Apr;46(7):e2400628. doi: 10.1002/marc.202400628. Epub 2024 Sep 3.

Abstract

The dimerization of small molecule acceptors (SMAs) holds significant potential by combining the advantages of both SMAs and polymer acceptors in realizing high power conversion efficiency (PCE) and operational stability in organic solar cells (OSCs). However, advancements in the selection and innovation of dimeric linkers are still challenging in enhancing their performance. In this study, three new dimeric acceptors, namely DY-Ar-4, DY-Ar-5, and DY-Ar-6 are synthesized, by linking two Y-series SMA subunits via an "end-to-end" strategy using flexible spacers (octyl, decyl, and dodecyl, respectively). The influence of spacer lengths on device performance is systematically investigated. The results indicate that DY-Ar-5 exhibits more compact and ordered packing, leading to an optimal morphology. OSCs based on PM6: DY-Ar-5 achieves a maximum PCE of 15.76%, attributes to enhance and balance carrier mobility, and reduce carrier recombination. This dimerization strategy using suitable non-conjugated linking units provides a rational principle for designing high-performance non-fullerene acceptors.

摘要

小分子受体(SMA)的二聚化通过结合SMA和聚合物受体的优势,在实现有机太阳能电池(OSC)的高功率转换效率(PCE)和操作稳定性方面具有巨大潜力。然而,在提高二聚体连接体的性能方面,其选择和创新仍然具有挑战性。在本研究中,通过使用柔性间隔基(分别为辛基、癸基和十二烷基)采用“端对端”策略连接两个Y系列SMA亚基,合成了三种新型二聚体受体,即DY-Ar-4、DY-Ar-5和DY-Ar-6。系统研究了间隔基长度对器件性能的影响。结果表明,DY-Ar-5表现出更紧凑和有序的堆积,从而形成最佳的形貌。基于PM6:DY-Ar-5的OSC实现了15.76%的最大PCE,这归因于载流子迁移率的提高和平衡以及载流子复合的减少。这种使用合适的非共轭连接单元的二聚化策略为设计高性能非富勒烯受体提供了合理的原则。

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