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在中心给体核处设计带有庞大三维取代基的A-D-A型稠环电子受体,以最小化非辐射损失并提高有机太阳能电池效率。

Designing A-D-A Type Fused-Ring Electron Acceptors with a Bulky 3D Substituent at the Central Donor Core to Minimize Non-Radiative Losses and Enhance Organic Solar Cell Efficiency.

作者信息

Lu Hao, Li Dawei, Liu Wenlong, Ran Guangliu, Wu Hongbo, Wei Nan, Tang Zheng, Liu Yahui, Zhang Wenkai, Bo Zhishan

机构信息

College of Materials Science and Engineering, Qingdao University, Qingdao, 266071, P. R. China.

College of Textiles & Clothing, State Key Laboratory of Bio-fibers and Eco-textiles, Qingdao University, Qingdao, 266071, China.

出版信息

Angew Chem Int Ed Engl. 2024 Aug 12;63(33):e202407007. doi: 10.1002/anie.202407007. Epub 2024 Jul 9.

Abstract

Designing and synthesizing narrow band gap acceptors that exhibit high photoluminescence quantum yield (PLQY) and strong crystallinity is a highly effective, yet challenging, approach to reducing non-radiative energy losses (▵E) and boosting the performance of organic solar cells (OSCs). We have successfully designed and synthesized an A-D-A type fused-ring electron acceptor, named DM-F, which features a planar molecular backbone adorned with bulky three-dimensional camphane side groups at its central core. These bulky substituents effectively hinder the formation of H-aggregates of the acceptors, promoting the formation of more J-aggregates and notably elevating the PLQY of the acceptor in the film. As anticipated, DM-F showcases pronounced near-infrared absorption coupled with impressive crystallinity. Organic solar cells (OSCs) leveraging DM-F exhibit a high EQE value and remarkably low ▵E of 0.14 eV-currently the most minimal reported value for OSCs. Moreover, the power conversion efficiency (PCE) of binary and ternary OSCs utilizing DM-F has reached 16.16 % and 20.09 %, respectively, marking a new apex in reported efficiency within the OSCs field. In conclusion, our study reveals that designing narrow band gap acceptors with high PLQY is an effective way to reduce ▵E and improve the PCE of OSCs.

摘要

设计并合成具有高光致发光量子产率(PLQY)和强结晶性的窄带隙受体,是减少非辐射能量损失(▵E)并提高有机太阳能电池(OSC)性能的一种高效但具有挑战性的方法。我们成功设计并合成了一种A-D-A型稠环电子受体,名为DM-F,其特征在于平面分子主链在中心核处装饰有庞大的三维莰烷侧基。这些庞大的取代基有效地阻碍了受体H-聚集体的形成,促进了更多J-聚集体的形成,并显著提高了薄膜中受体的PLQY。正如预期的那样,DM-F表现出明显的近红外吸收以及令人印象深刻的结晶性。利用DM-F的有机太阳能电池(OSC)表现出高EQE值和仅0.14 eV的极低▵E——这是目前OSC报道的最小值。此外,使用DM-F的二元和三元OSC的功率转换效率(PCE)分别达到了16.16%和20.09%,标志着OSC领域报道效率的新顶点。总之,我们的研究表明,设计具有高PLQY的窄带隙受体是减少▵E并提高OSC的PCE的有效方法。

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