Molecular design revitalizes the low-cost PTV-polymer for highly efficient organic solar cells.

Chromatography (Basel) Pub Date : 2021-02-12 eCollection Date: 2021-08-01 DOI:10.1093/nsr/nwab031
Junzhen Ren, Pengqing Bi, Jianqi Zhang, Jiao Liu, Jingwen Wang, Ye Xu, Zhixiang Wei, Shaoqing Zhang, Jianhui Hou
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Abstract

Developing photovoltaic materials with simple chemical structures and easy synthesis still remains a major challenge in the industrialization process of organic solar cells (OSCs). Herein, an ester substituted poly(thiophene vinylene) derivative, PTVT-T, was designed and synthesized in very few steps by adopting commercially available raw materials. The ester groups on the thiophene units enable PTVT-T to have a planar and stable conformation. Moreover, PTVT-T presents a wide absorption band and strong aggregation effect in solution, which are the key characteristics needed to realize high performance in non-fullerene-acceptor (NFA)-based OSCs. We then prepared OSCs by blending PTVT-T with three representative fullerene- and NF-based acceptors, PC71BM, IT-4F and BTP-eC9. It was found that PTVT-T can work well with all the acceptors, showing great potential to match new emerging NFAs. Particularly, a remarkable power conversion efficiency of 16.20% is achieved in a PTVT-T:BTP-eC9-based device, which is the highest value among the counterparts based on PTV derivatives. This work demonstrates that PTVT-T shows great potential for the future commercialization of OSCs.

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分子设计使低成本 PTV 聚合物重新焕发活力,可用于高效有机太阳能电池。
开发化学结构简单、易于合成的光伏材料仍然是有机太阳能电池(OSC)产业化过程中的一大挑战。在此,我们设计了一种酯取代的聚(噻吩-乙烯)衍生物 PTVT-T,并采用市场上可买到的原材料,在极少的步骤内合成了这种聚(噻吩-乙烯)衍生物。噻吩单元上的酯基使 PTVT-T 具有平面和稳定的构象。此外,PTVT-T 在溶液中具有较宽的吸收带和较强的聚集效应,而这些正是实现基于非富勒烯受体(NFA)的高性能 OSCs 所需的关键特性。随后,我们将 PTVT-T 与三种具有代表性的富勒烯和 NF 基受体 PC71BM、IT-4F 和 BTP-eC9 混合,制备出了 OSC。结果发现,PTVT-T 与所有受体都能很好地配合,显示出与新兴 NFA 相匹配的巨大潜力。特别是,基于 PTVT-T:BTP-eC9 的器件实现了 16.20% 的显著功率转换效率,是基于 PTV 衍生物的同类器件中的最高值。这项工作表明,PTVT-T 在未来的 OSC 商业化中显示出巨大的潜力。
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