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通过固体添加剂策略优化双纤维网络形态可实现效率达19.50%的二元全聚合物太阳能电池。

Optimizing Double-Fibril Network Morphology via Solid Additive Strategy Enables Binary All-Polymer Solar Cells with 19.50% Efficiency.

作者信息

Song Jiali, Li Chao, Ma Haisheng, Han Bingyu, Wang Qianqian, Wang Xunchang, Wei Donghui, Bu Laju, Yang Renqiang, Yan He, Sun Yanming

机构信息

Hangzhou International Innovation Institute, Beihang University, Hangzhou, 311115, P. R. China.

School of Chemistry, Beihang University, Beijing, 100191, P. R. China.

出版信息

Adv Mater. 2024 Sep;36(36):e2406922. doi: 10.1002/adma.202406922. Epub 2024 Jul 16.

Abstract

Double-fibril network morphology (DFNM), in which the donor and the acceptor can self-assemble into a double-fibril structure, is beneficial for exciton dissociation and charge transport in organic solar cells. Herein, it is demonstrated that such DFNM can be constructed and optimized in all-polymer solar cells (all-PSCs) with the assistance of 2-alkoxynaphthalene volatile solid additives. It is revealed that the incorporation of 2-alkoxynaphthalene can induce a stepwise regulation in the aggregation of donor and acceptor molecules during film casting and thermal annealing processes. Through altering the alkoxy of 2-alkoxynaphthalene solid additives, both the intermolecular interactions and molecular miscibility with the host materials can be precisely tuned, which allows for the optimization of the molecular aggregation process and facilitation of molecular self-assembly, and thus leading to reinforced molecular packing and optimized DFNM. As a result, an unprecedented efficiency of 19.50% (certified as 19.1%) is obtained for 2-ethoxynaphthalene-processed PM6:PY-DT-X all-PSCs with excellent photostability (T = 1750 h). This work reveals that the optimization of DFNM via solid additive strategy is a promising avenue to boosting the performance of all-PSCs.

摘要

双纤网络形态(DFNM),即供体和受体能够自组装成双纤结构,有利于有机太阳能电池中的激子解离和电荷传输。在此,证明了在2-烷氧基萘挥发性固体添加剂的辅助下,可在全聚合物太阳能电池(全PSC)中构建和优化这种DFNM。研究表明,加入2-烷氧基萘可在流延成膜和热退火过程中诱导供体和受体分子聚集的逐步调控。通过改变2-烷氧基萘固体添加剂的烷氧基,分子间相互作用以及与主体材料的分子混溶性均可得到精确调控,这使得分子聚集过程得以优化并促进分子自组装,进而导致分子堆积增强和DFNM优化。结果,经2-乙氧基萘处理的PM6:PY-DT-X全PSC获得了前所未有的19.50%的效率(认证效率为19.1%),且具有出色的光稳定性(T = 1750小时)。这项工作表明,通过固体添加剂策略优化DFNM是提高全PSC性能的一条有前景的途径。

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