Zhu Yuhang, Guo Hui, Xiong Xiaoying, Cai Dongdong, Ma Yunlong, Zheng Qingdong
State Key Laboratory of Structure Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, 350002, China.
College of Chemistry, Fuzhou University, Fuzhou, 350116, China.
Adv Mater. 2024 Jun;36(25):e2314169. doi: 10.1002/adma.202314169. Epub 2024 Mar 27.
Currently, high-performance polymerized small-molecule acceptors (PSMAs) based on ADA-type SMAs are still rare and greatly demanded for polymer solar cells (PSCs). Herein, two novel regioregular PSMAs (PW-Se and PS-Se) are designed and synthesized by using centrosymmetric (linear-shaped) and axisymmetric (banana-shaped) ADA-type SMAs as the main building blocks, respectively. It is demonstrated that photovoltaic performance of the PSMAs can be significantly improved by optimizing the configuration of ADA-type SMAs. Compared to the axisymmetric SMA-based polymer (PS-Se), PW-Se using a centrosymmetric SMA as the main building block exhibits better backbone coplanarity thereby resulting in bathochromically shifted absorption with a higher absorption coefficient, tighter interchain π-π stacking, and more favorable blend film morphology. As a result, enhanced and more-balanced charge transport, better exciton dissociation, and reduced charge recombination are achieved for PW-Se-based devices with PM6 as polymer donor. Benefiting from these positive factors, the optimal PM6:PW-Se-based device exhibits a higher power conversion efficiency (PCE) of 15.65% compared to the PM6:PS-Se-based device (8.90%). Furthermore, incorporation of PW-Se as a third component in the binary active layer of PM6:M36 yields ternary devices with an outstanding PCE of 18.0%, which is the highest value for PSCs based on ADA-type SMAs, to the best of the knowledge.
目前,基于ADA型小分子受体(PSMA)的高性能聚合小分子受体在聚合物太阳能电池(PSC)中仍然很少见且需求巨大。在此,分别以中心对称(线性)和轴对称(香蕉形)的ADA型小分子受体为主要结构单元,设计并合成了两种新型的区域规整PSMA(PW-Se和PS-Se)。结果表明,通过优化ADA型小分子受体的结构,可以显著提高PSMA的光伏性能。与基于轴对称小分子受体的聚合物(PS-Se)相比,以中心对称小分子受体为主要结构单元的PW-Se表现出更好的主链共面性,从而导致吸收光谱红移且吸收系数更高、链间π-π堆积更紧密以及共混膜形态更有利。因此,以PM6为聚合物供体的基于PW-Se的器件实现了增强且更平衡的电荷传输、更好的激子解离以及减少的电荷复合。受益于这些积极因素,与基于PM6:PS-Se的器件(8.90%)相比,最优的基于PM6:PW-Se的器件表现出更高的功率转换效率(PCE),为15.65%。此外,将PW-Se作为第三组分掺入PM6:M36的二元活性层中,得到了具有18.0%优异PCE的三元器件,据了解,这是基于ADA型小分子受体的PSC的最高值。