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通过精细选择第三组分,三元有机太阳能电池的功率转换效率接近 15%。

Ternary Organic Solar Cells with Power Conversion Efficiency Approaching 15% by Fine-Selecting the Third Component.

机构信息

School of Environmental Engineering and Chemistry, Luoyang Institute of Science and Technology, Luoyang, 4710023, China.

School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, 450001, China.

出版信息

Macromol Rapid Commun. 2023 Oct;44(20):e2300350. doi: 10.1002/marc.202300350. Epub 2023 Aug 9.

Abstract

Nonfullerene acceptors with mediate bandgap play a crucial role in ternary devices as the third component, further boosting the performance of organic solar cells (OSCs). Herein, three F-series acceptors (F-H, F-Cl, and F-2Cl) with mediate bandgap are selected and introduced into the PM6:BDT-Br binary system as third component to find the detailed influence of end groups with chlorine (Cl) atom substitution on the performance of ternary organic solar cells. Due to the increased substitution of Cl atoms on the end groups, F-Cl and F-2Cl as guest acceptors reveal a superior ability to regulate the morphology of blend films, contributing to the ordered packing properties and high crystallinity. As a result, F-Cl and F-2Cl based ternary OSCs achieve significantly improved PCEs of 13.89% and 14.67%, respectively, compared with the binary devices (12.70%). On the contrary, F-H without Cl atom displays a poor compatibility with the host system, resulting in an inferior ternary device with a low PCE of 10.79%. This work indicates that F-series acceptors with mediate bandgap are a promising class of third component for high-performance ternary OSCs. And introducing more Cl atoms substitution on the end groups, especially F-2Cl, will own a broad applicability for other binary devices.

摘要

具有中等带隙的非富勒烯受体在三元器件中作为第三组分起着至关重要的作用,进一步提高了有机太阳能电池(OSCs)的性能。本文选择了三个具有中等带隙的 F 系列受体(F-H、F-Cl 和 F-2Cl)并将其引入 PM6:BDT-Br 二元体系作为第三组分,以深入研究末端基团氯(Cl)原子取代对三元有机太阳能电池性能的影响。由于末端基团上 Cl 原子的取代增加,F-Cl 和 F-2Cl 作为客体受体显示出更好的调节共混膜形貌的能力,有助于有序堆积性质和高结晶度。结果,基于 F-Cl 和 F-2Cl 的三元 OSCs 的 PCE 分别显著提高到 13.89%和 14.67%,而二元器件为 12.70%。相反,没有 Cl 原子的 F-H 与主体系统的兼容性较差,导致三元器件的 PCE 较低,仅为 10.79%。这项工作表明,具有中等带隙的 F 系列受体是高性能三元 OSCs 的一类有前途的第三组分。并且在末端基团上引入更多的 Cl 原子取代,特别是 F-2Cl,将对其他二元器件具有广泛的适用性。

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