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通过对π桥连接基和侧链进行协同优化制备的高性能聚合小分子受体。

High performance polymerized small molecule acceptor by synergistic optimization on π-bridge linker and side chain.

作者信息

Sun Guangpei, Jiang Xin, Li Xiaojun, Meng Lei, Zhang Jinyuan, Qin Shucheng, Kong Xiaolei, Li Jing, Xin Jingming, Ma Wei, Li Yongfang

机构信息

Beijing National Laboratory for Molecular Sciences, CAS Key Laboratory of Organic Solids, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, China.

School of Chemical Science, University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Nat Commun. 2022 Sep 7;13(1):5267. doi: 10.1038/s41467-022-32964-z.

Abstract

The polymerized small-molecule acceptors have attracted great attention for application as polymer acceptor in all-polymer solar cells recently. The modification of small molecule acceptor building block and the π-bridge linker is an effective strategy to improve the photovoltaic performance of the polymer acceptors. In this work, we synthesized a new polymer acceptor PG-IT2F which is a modification of the representative polymer acceptor PY-IT by replacing its upper linear alkyl side chains on the small molecule building block with branched alkyl chains and attaching difluorene substituents on its thiophene π-bridge linker. Through this synergistic optimization, PG-IT2F possesses more suitable phase separation, increased charge transportation, better exciton dissociation, lower bimolecular recombination, and longer charge transfer state lifetime than PY-IT in their polymer solar cells with PM6 as polymer donor. Therefore, the devices based on PM6:PG-IT2F demonstrated a high power conversion efficiency of 17.24%, which is one of the highest efficiency reported for the binary all polymer solar cells to date. This work indicates that the synergistic regulation of small molecule acceptor building block and π-bridge linker plays a key role in designing and developing highly efficient polymer acceptors.

摘要

近年来,聚合小分子受体作为全聚合物太阳能电池中的聚合物受体受到了广泛关注。对小分子受体结构单元和π桥连接体进行修饰是提高聚合物受体光伏性能的有效策略。在本工作中,我们合成了一种新型聚合物受体PG-IT2F,它是对代表性聚合物受体PY-IT的修饰,通过用支链烷基链取代小分子结构单元上的线性烷基侧链,并在其噻吩π桥连接体上连接二芴取代基。通过这种协同优化,在以PM6作为聚合物给体的聚合物太阳能电池中,PG-IT2F比PY-IT具有更合适的相分离、更高的电荷传输、更好的激子解离、更低的双分子复合以及更长的电荷转移态寿命。因此,基于PM6:PG-IT2F的器件展现出17.24%的高功率转换效率,这是迄今为止二元全聚合物太阳能电池报道的最高效率之一。这项工作表明,小分子受体结构单元和π桥连接体的协同调控在设计和开发高效聚合物受体中起着关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a8e/9452561/916c0aba7e41/41467_2022_32964_Fig1_HTML.jpg

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