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端基的偶极矩调制实现具有中带隙的不对称受体,用于高效稳定的三元有机太阳能电池。

Dipole Moment Modulation of Terminal Groups Enables Asymmetric Acceptors Featuring Medium Bandgap for Efficient and Stable Ternary Organic Solar Cells.

作者信息

Zou Bosen, Liang Anhai, Ding Pengbo, Yao Jia, Zeng Xianghao, Li Hongxiang, Ma Ruijie, Li Chunliang, Wu Weiwei, Chen Dezhang, Qammar Memoona, Yu Han, Yi Jicheng, Guo Liang, Pun Sai Ho, Halpert Jonathan E, Li Gang, Kan Zhipeng, Yan He

机构信息

Department of Chemistry and Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction, The Hong Kong University of Science and Technology, 999077, Hong Kong, China.

Center on Nanoenergy Research, Institute of Science and Technology for Carbon Peak & Neutrality, School of Physical Science & Technology, Guangxi University, 530004, Nanning, China.

出版信息

Angew Chem Int Ed Engl. 2025 Jan 15;64(3):e202415332. doi: 10.1002/anie.202415332. Epub 2024 Nov 6.

Abstract

This study puts forth a novel terminal group design to develop medium-band gap Y-series acceptors beyond conventional side-chain engineering. We focused on the strategical integration of an electron-donating methoxy group and an electron-withdrawing halogen atom at benzene-fused terminal groups. This combination precisely modulated the dipole moment and electron density of terminal groups, effectively attenuating intramolecular charge transfer effect, and widening the band gap of acceptors. The incorporation of these terminal groups yielded two asymmetric acceptors, named BTP-2FClO and BTP-2FBrO, both of which exhibited open-circuit voltage (V) as high as 0.96 V in binary devices, representing the highest Vs among the asymmetric Y-series small molecule acceptors. More importantly, both BTP-2FClO and BTP-2FBrO exhibit modest aggregation behaviors and molecular crystallinity, making them suitable as a third component to mitigate excess aggregation of the PM6 : BTP-eC9 blend and optimize the devices' morphology. As a result, the optimized BTP-2FClO-based ternary organic solar cells (OSCs) achieved a remarkable power conversion efficiency (PCE) of 19.34 %, positioning it among the highest-performing OSCs. Our study highlights the molecular design importance on manipulating dipole moments and electron density in developing medium-band gap acceptors, and offers a highly efficient third component for high-performance ternary OSCs.

摘要

本研究提出了一种新颖的端基设计,以开发超越传统侧链工程的中带隙Y系列受体。我们专注于在苯并稠合端基上策略性地整合供电子甲氧基和吸电子卤原子。这种组合精确地调节了端基的偶极矩和电子密度,有效减弱了分子内电荷转移效应,并拓宽了受体的带隙。引入这些端基得到了两种不对称受体,命名为BTP-2FClO和BTP-2FBrO,它们在二元器件中均表现出高达0.96 V的开路电压(V),代表了不对称Y系列小分子受体中的最高V值。更重要的是,BTP-2FClO和BTP-2FBrO均表现出适度的聚集行为和分子结晶度,使其适合作为第三组分来减轻PM6 : BTP-eC9共混物的过度聚集并优化器件形态。结果,基于BTP-2FClO的优化三元有机太阳能电池(OSC)实现了19.34 %的显著功率转换效率(PCE),使其跻身于性能最高的OSC之列。我们的研究突出了在开发中带隙受体时操纵偶极矩和电子密度的分子设计重要性,并为高性能三元OSC提供了一种高效的第三组分。

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