Li Zhe, Xiang Yanhe, Li Jiayu, Feng Luxin, Zhang Ming, Zhang Zhiguo, Yan Shouke, Xu Bowei
State Key Laboratory of Chemical Resource Engineering, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Angew Chem Int Ed Engl. 2025 Jan 10;64(2):e202413986. doi: 10.1002/anie.202413986. Epub 2024 Oct 31.
High-performance organic cathode interlayers (CILs) play a crucial role in the advance of organic solar cells (OSCs). However, organic CILs have exhibited inferior performances to their inorganic counterparts over a long time, due to the inherent shortcoming of poor charge transporting capability. Here, we designed and synthesized a perylene-diimide (PDI) zwitterion PDI-B as high-performance organic CIL for OSCs. We revealed that an obvious H-aggregate of PDI-B was formed during the solution processing, thereby significantly enhancing the charge transporting capability of the CIL. Compared to the classic PDINN, the π-π stacking distance of PDI-B was reduced from 4.2 Å to 3.9 Å, which further facilitated the charge transport. Consequently, PDI-B showed a high conductivity of 1.81×10S/m; this is comparable to that of inorganic CILs. The binary OSC showed an elevated PCE of 19.23 %, which is among the highest PCE values for binary OSCs. Benefitting from improved solvent resistance and good compatibility with large-area processing method of PDI-B, the photovoltaic performances of inverted and 1-cm OSC were significantly improved. The results from this work provide a new approach of optimizing the condensed structure of PDI film to boost the charge conductivity, opening an avenue to develop high-performance PDI-based CILs.
高性能有机阴极界面层(CILs)在有机太阳能电池(OSCs)的发展中起着至关重要的作用。然而,由于电荷传输能力差这一固有缺点,长期以来有机CILs的性能一直不如无机CILs。在此,我们设计并合成了一种苝二酰亚胺(PDI)两性离子PDI-B作为用于OSCs的高性能有机CIL。我们发现,在溶液处理过程中形成了明显的PDI-B H聚集体,从而显著提高了CIL的电荷传输能力。与经典的PDINN相比,PDI-B的π-π堆积距离从4.2 Å减小到3.9 Å,这进一步促进了电荷传输。因此,PDI-B表现出1.81×10S/m的高电导率;这与无机CILs相当。二元OSC的光电转换效率(PCE)提高到了19.23%,这是二元OSCs中最高的PCE值之一。得益于PDI-B改善的耐溶剂性以及与大面积加工方法的良好兼容性,倒置和1厘米OSC的光伏性能得到了显著提高。这项工作的结果提供了一种优化PDI薄膜凝聚结构以提高电荷电导率的新方法,为开发高性能基于PDI的CILs开辟了一条途径。