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含不对称非富勒烯受体衍生物的三元有机太阳能电池。

Asymmetric Non-Fullerene Acceptor Derivatives Incorporated Ternary Organic Solar Cells.

作者信息

Lan Ai, Zhu Jintao, Zhang Zhuohan, Lv Yifan, Lu Hong, Zhao Ningxin, Do Hainam, Chen Zhi-Kuan, Chen Fei

机构信息

Department of Chemical and Environmental Engineering, The University of Nottingham Ningbo China, Ningbo 315100, China.

New Materials Institute, University of Nottingham Ningbo China, Ningbo 315100, China.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 23;15(33):39657-39668. doi: 10.1021/acsami.3c06981. Epub 2023 Aug 14.

Abstract

Incorporating ITIC derivatives as guest acceptors into binary host systems is an effective strategy for constructing high-performance ternary organic solar cells (TOSCs). In this work, we introduced A-D-A type ITIC derivatives PTBTT-4F (asymmetric) and PTBTP-4F (symmetric) into the PM6:BTP-BO-4F (Y6-BO) binary blend and investigated the impacts of two guest acceptors on the performance of TOSCs. Differentiated device performance was observed, although PTBTT-4F and PTBTP-4F presented similar chemical structures and comparable absorptions. The PTBTT-4F ternary devices exhibited an improved power conversion efficiency () of 17.67% with increased open circuit () and current density (), whereas the PTBTP-4F-based ternary devices yielded a relatively lower of 16.34%. PTBTT-4F showed much better compatibility with the host acceptor BTP-BO-4F, so that they formed a well-mixed alloy phase state; more precise phase separation and increased crystallinity were thus induced in the ternary blends, leading to reduced molecular recombination and improved charge mobilities, which contributed to improved fill factors of the ternary devices. In addition, the optimized PTBTT-4F devices exhibited good performance tolerance of the photoactive layer thickness, as they even delivered a of 15.25% when the active layer was as thick as up to ∼300 nm.

摘要

将 ITIC 衍生物作为客体受体引入二元主体体系是构建高性能三元有机太阳能电池(TOSCs)的有效策略。在本工作中,我们将 A-D-A 型 ITIC 衍生物 PTBTT-4F(不对称)和 PTBTP-4F(对称)引入 PM6:BTP-BO-4F(Y6-BO)二元共混物中,并研究了两种客体受体对 TOSCs 性能的影响。尽管 PTBTT-4F 和 PTBTP-4F 具有相似的化学结构和相当的吸收特性,但观察到了不同的器件性能。PTBTT-4F 三元器件的功率转换效率()提高到 17.67%,开路电压()和电流密度()增加,而基于 PTBTP-4F 的三元器件的功率转换效率相对较低,为 16.34%。PTBTT-4F 与主体受体 BTP-BO-4F 表现出更好的相容性,因此它们形成了均匀混合的合金相态;从而在三元共混物中诱导出更精确的相分离和更高的结晶度,导致分子复合减少和电荷迁移率提高,这有助于提高三元器件的填充因子。此外,优化后的 PTBTT-4F 器件对光活性层厚度表现出良好的性能耐受性,因为当活性层厚度高达约 300 nm 时,它们甚至能实现 15.25%的功率转换效率()。

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