Liu Yuhao, Zhan Lingling, Li Zhongjie, Jiang Hang, Qiu Huayu, Sun Xiaokang, Hu Hanlin, Sun Rui, Min Jie, Yu Jinyang, Fu Weifei, Yin Shouchun, Chen Hongzheng
Key Laboratory of Organosilicon Chemistry and Materials Technology of Ministry of Education, College of Materials, Chemistry and Chemical Engineering, Hangzhou Normal University, Hangzhou, 311121, P. R. China.
Hoffmann Institute of Advanced Materials, Shenzhen Polytechnic University, Shenzhen, 518055, P. R. China.
Adv Sci (Weinh). 2024 Oct;11(39):e2405303. doi: 10.1002/advs.202405303. Epub 2024 Aug 13.
The ternary strategy proves effective for breakthroughs in organic photovoltaics (OPVs). Elevating three photovoltaic parameters synergistically, especially the proportion-insensitive third component, is crucial for efficient ternary devices. This work introduces a molecular design strategy by comprehensively analyzing asymmetric end groups, side-chain engineering, and halogenation to explore the outstanding optoelectronic properties of the proportion-insensitive third component in efficient ternary systems. Three asymmetric non-fullerene acceptors (BTP-SA1, BTP-SA2, and BTP-SA3) are synthesized based on the Y6 framework and incorporated as the third component into the D18:Y6 binary system. BTP-SA3, featuring asymmetric terminal (difluoro-indone and dichloride-cyanoindone terminal), with branched alkyl side chains, exhibited high open-circuit voltage (V), balanced crystallinity and compatibility, achieving synergistic enhancements in V (0.862 V), short circuit-current density (J, 27.52 mA cm), fill fact (FF, 81.01%), and power convert efficiency (PCE, 19.19%). Device based on D18/Y6:BTP-SA3 (layer-by-layer processed) reached a high efficiency of 19.36%, demonstrating a high tolerance for BTP-SA3 (10-50%). This work provides novel insights into optimizing OPVs performances in multi-component systems and designing components with enhanced tolerance.
三元策略在有机光伏(OPV)领域的突破中被证明是有效的。协同提升三个光伏参数,特别是对比例不敏感的第三组分,对于高效三元器件至关重要。这项工作通过综合分析不对称端基、侧链工程和卤化作用,引入了一种分子设计策略,以探索高效三元体系中对比例不敏感的第三组分的优异光电性能。基于Y6框架合成了三种不对称非富勒烯受体(BTP-SA1、BTP-SA2和BTP-SA3),并将其作为第三组分引入D18:Y6二元体系。具有不对称末端(二氟茚酮和二氯氰基茚酮末端)且带有支链烷基侧链的BTP-SA3,展现出高开路电压(V)、平衡的结晶度和相容性,实现了V(0.862 V)、短路电流密度(J,27.52 mA cm)、填充因子(FF,81.01%)和功率转换效率(PCE,19.19%)的协同提升。基于D18/Y6:BTP-SA3(逐层加工)的器件达到了19.36%的高效率,表明对BTP-SA3具有高耐受性(10%-50%)。这项工作为优化多组分体系中的有机光伏性能以及设计具有更高耐受性的组分提供了新见解。