Department of Chemistry, City University of Hong Kong, Kowloon, Hong Kong 999077, China.
Hong Kong Institute for Clean Energy, City University of Hong Kong, Kowloon, Hong Kong 999077, China.
J Am Chem Soc. 2023 Mar 15;145(10):5909-5919. doi: 10.1021/jacs.2c13247. Epub 2023 Mar 6.
Organic photovoltaics (OPVs) have achieved great progress in recent years due to delicately designed non-fullerene acceptors (NFAs). Compared with tailoring of the aromatic heterocycles on the NFA backbone, the incorporation of conjugated side-groups is a cost-effective way to improve the photoelectrical properties of NFAs. However, the modifications of side-groups also need to consider their effects on device stability since the molecular planarity changes induced by side-groups are related to the NFA aggregation and the evolution of the blend morphology under stresses. Herein, a new class of NFAs with local-isomerized conjugated side-groups are developed and the impact of local isomerization on their geometries and device performance/stability are systematically investigated. The device based on one of the isomers with balanced side- and terminal-group torsion angles can deliver an impressive power conversion efficiency (PCE) of 18.5%, with a low energy loss (0.528 V) and an excellent photo- and thermal stability. A similar approach can also be applied to another polymer donor to achieve an even higher PCE of 18.8%, which is among the highest efficiencies obtained for binary OPVs. This work demonstrates the effectiveness of applying local isomerization to fine-tune the side-group steric effect and non-covalent interactions between side-group and backbone, therefore improving both photovoltaic performance and stability of fused ring NFA-based OPVs.
有机光伏(OPV)近年来由于精心设计的非富勒烯受体(NFA)取得了重大进展。与 NFA 主链上芳杂环的剪裁相比,共轭侧基的引入是提高 NFA 光电性能的一种经济有效的方法。然而,侧基的修饰也需要考虑其对器件稳定性的影响,因为侧基引起的分子平面性变化与 NFA 聚集以及在应力下的共混形貌演变有关。本文开发了一类具有局部异构共轭侧基的新型 NFA,并系统研究了局部异构化对其几何形状和器件性能/稳定性的影响。基于其中一种异构体的器件,其侧基和端基扭转角平衡,可提供令人印象深刻的功率转换效率(PCE)为 18.5%,能量损耗低(0.528 V),具有出色的光热稳定性。类似的方法也可以应用于另一种聚合物给体,以实现更高的 18.8%的 PCE,这是二元 OPV 中获得的最高效率之一。这项工作证明了应用局部异构化来微调侧基空间效应和侧基与主链之间的非共价相互作用的有效性,从而提高了基于稠环 NFA 的 OPV 的光伏性能和稳定性。