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不对称苯并噻二唑基固体添加剂助力全聚合物太阳能电池,效率超过19% 。

Asymmetrified Benzothiadiazole-Based Solid Additives Enable All-Polymer Solar Cells with Efficiency Over 19 .

作者信息

Chen Tianqi, Zhong Yanyi, Duan Tainan, Tang Xian, Zhao Wenkai, Wang Jiaying, Lu Guanghao, Long Guankui, Zhang Jiangbin, Han Kai, Wan Xiangjian, Kan Bin, Chen Yongsheng

机构信息

School of Materials Science and Engineering, National Institute for Advanced Materials, Nankai University, 300350, Tianjin, China.

State Key Laboratory and Institute of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, The Centre of Nanoscale Science and Technology and Key Laboratory of Functional Polymer Materials, Renewable Energy Conversion and Storage Center (RECAST), College of Chemistry, Nankai University, 300071, Tianjin, China.

出版信息

Angew Chem Int Ed Engl. 2025 Jan 2;64(1):e202412983. doi: 10.1002/anie.202412983. Epub 2024 Oct 21.

Abstract

Disordered polymer chain entanglements within all-polymer blends limit the formation of optimal donor-acceptor phase separation. Therefore, developing effective methods to regulate morphology evolution is crucial for achieving optimal morphological features in all-polymer organic solar cells (APSCs). In this study, two isomers, 4,5-difluorobenzo-c-1,2,5-thiadiazole (SF-1) and 5,6-difluorobenzo-c-1,2,5-thiadiazole (SF-2), were designed as solid additives based on the widely-used electron-deficient benzothiadiazole unit in nonfullerene acceptors. The incorporation of SF-1 or SF-2 into PM6 : PY-DT blend induces stronger molecular packing via molecular interaction, leading to the formation of continuous interpenetrated networks with suitable phase-separation and vertical distribution. Furthermore, after treatment with SF-1 and SF-2, the exciton diffusion lengths for PY-DT films are extended to over 40 nm, favoring exciton diffusion and charge transport. The asymmetrical SF-2, characterized by an enhanced dipole moment, increases the power conversion efficiency (PCE) of PM6 : PY-DT-based device to 18.83 % due to stronger electrostatic interactions. Moreover, a ternary device strategy boosts the PCE of SF-2-treated APSC to over 19 %. This work not only demonstrates one of the best performances of APSCs but also offers an effective approach to manipulate the morphology of all-polymer blends using rational-designed solid additives.

摘要

全聚合物共混物中无序的聚合物链缠结限制了最佳供体 - 受体相分离的形成。因此,开发有效的方法来调节形态演变对于在全聚合物有机太阳能电池(APSC)中实现最佳形态特征至关重要。在本研究中,基于非富勒烯受体中广泛使用的缺电子苯并噻二唑单元,设计了两种异构体,4,5 - 二氟苯并 - c - 1,2,5 - 噻二唑(SF - 1)和5,6 - 二氟苯并 - c - 1,2,5 - 噻二唑(SF - 2)作为固体添加剂。将SF - 1或SF - 2掺入PM6 : PY - DT共混物中,通过分子相互作用诱导更强的分子堆积,导致形成具有合适相分离和垂直分布的连续互穿网络。此外,用SF - 1和SF - 2处理后,PY - DT薄膜的激子扩散长度延长至超过40 nm,有利于激子扩散和电荷传输。具有增强偶极矩的不对称SF - 2,由于更强的静电相互作用,将基于PM6 : PY - DT的器件的功率转换效率(PCE)提高到18.83 %。此外,三元器件策略将经SF - 2处理的APSC的PCE提高到超过19 %。这项工作不仅展示了APSC的最佳性能之一,还提供了一种使用合理设计的固体添加剂来操纵全聚合物共混物形态的有效方法。

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