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一种用于高性能有机光伏电池的通用无卤聚合物给体。

A Universal Nonhalogenated Polymer Donor for High-Performance Organic Photovoltaic Cells.

作者信息

Zhang Tao, An Cunbin, Cui Yong, Zhang Jianqi, Bi Pengqing, Yang Chenyi, Zhang Shaoqing, Hou Jianhui

机构信息

State Key Laboratory of Polymer Physics and Chemistry, Beijing National Laboratory for Molecular Sciences, CAS Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, China.

University of Chinses Academy of Sciences, Beijing, 100049, China.

出版信息

Adv Mater. 2022 Jan;34(2):e2105803. doi: 10.1002/adma.202105803. Epub 2021 Nov 1.

Abstract

Nonhalogenated polymers have great potential in the commercialization of organic photovoltaic (OPV) cells due to their advantage in low-cost preparation. However, non-halogenated polymers usually have high highest occupied molecular orbital (HOMO) energy levels and inferior self-aggregation properties in solution, thus resulting in low power conversion efficiencies (PCEs). Herein, two nonhalogenated polymers, PB1 and PB2, are prepared. When the polymers are used to fabricate OPV cells with BTP-eC9, the PB1-based device only gives a PCE of 5.3%, while the PB2-based device shows an outstanding PCE of 17.7%. After the introduction of PBDB-TF as the third component, the PB2:PBDB-TF:BTP-eC9-based device with an optimal weight ratio of 0.5:0.5:1 achieves a PCE up to 18.4%. More importantly, PB2 exhibits good compatibility with various nonfullerene acceptors to achieve better PCEs than those of classical polymer (PBDB-T and PBDB-TF)-based devices. When PB2 is combined with a wide-bandgap electron acceptor (F-BTA3), this device shows excellent PCE of 27.1% and 24.6% for 1 and 10 cm devices, respectively, under light intensity of 1000 lux light-emitting diode illumination. These results provide new insight in the rational design of novel nonhalogenated polymer donors for further development of low-cost materials and broadening the application of OPV cells.

摘要

由于在低成本制备方面具有优势,非卤化聚合物在有机光伏(OPV)电池商业化方面具有巨大潜力。然而,非卤化聚合物通常具有较高的最高占据分子轨道(HOMO)能级,且在溶液中的自聚集性能较差,从而导致功率转换效率(PCE)较低。在此,制备了两种非卤化聚合物PB1和PB2。当这些聚合物用于与BTP-eC9制备OPV电池时,基于PB1的器件的PCE仅为5.3%,而基于PB2的器件则显示出高达17.7%的优异PCE。在引入PBDB-TF作为第三组分后,具有0.5:0.5:1最佳重量比的基于PB2:PBDB-TF:BTP-eC9的器件的PCE高达18.4%。更重要的是,PB2与各种非富勒烯受体表现出良好的相容性,从而实现了比基于经典聚合物(PBDB-T和PBDB-TF)的器件更高的PCE。当PB2与宽带隙电子受体(F-BTA3)结合时,在1000勒克斯发光二极管照明的光强下,该器件对于1厘米和10厘米器件的PCE分别高达27.1%和24.6%。这些结果为合理设计新型非卤化聚合物给体以进一步开发低成本材料和拓宽OPV电池的应用提供了新的见解。

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