Dai Xingjian, Li Yingfeng, Li Hongjia, Zhou Weiling, Xu Xiaopeng, Deng Min, Liao Chentong, Peng Qiang
School of Chemical Engineering and State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu, 610065, P. R. China.
College of Materials and Chemistry & Chemical Engineering, Chengdu University of Technology, Chengdu, 610059, P. R. China.
Small. 2025 May;21(20):e2411457. doi: 10.1002/smll.202411457. Epub 2025 Mar 26.
Heterojunction interfaces play a crucial role in charge carrier transport, influencing the overall photovoltaic performance of organic solar cells (OSCs). Despite the importance, advancements in interfacial engineering, especially in optimizing the microstructure and nanomorphology, have not kept pace with research on photoactive layers. In the study, a strategy is explored to control the self-assembly growth of alcohol-soluble Me-4PACz (4P) used as a hole transport layer (HTL) in OSCs. The surface architecture is modified of inorganic Co salts via Cu doping and UV-ozone treatments, creating a smooth top surface with an increased Co/Co ratio and hydroxyl groups. This meticulous design fine-tuned the assembly behavior of self-assembled molecules, resulting in the transition from spherical aggregates to a more uniform worm-like morphology. Additionally, the electrical and optical properties are optimized to passivate surface defects and enhance the wettability of organic solvents, leading to improved hole extraction and reduced interfacial charge carrier recombination losses. Consequently, an OSC with Cu-Co/4P as the HTL exhibited the highest power conversion efficiency of 20.42% (certified 20.20%). The characteristic universality and stability make the Cu-Co/4P HTL a potential candidate for widespread applications, particularly in providing rationalized guidance to further enhance the performance of OSCs.
异质结界面在电荷载流子传输中起着关键作用,影响着有机太阳能电池(OSC)的整体光伏性能。尽管其很重要,但界面工程的进展,尤其是在优化微观结构和纳米形态方面,并未与光活性层的研究同步。在该研究中,探索了一种策略来控制用作OSC空穴传输层(HTL)的醇溶性Me-4PACz(4P)的自组装生长。通过铜掺杂和紫外线臭氧处理对无机钴盐的表面结构进行了改性,形成了具有更高钴/钴比和羟基的光滑顶面。这种精心设计微调了自组装分子的组装行为,导致从球形聚集体转变为更均匀的蠕虫状形态。此外,优化了电学和光学性质以钝化表面缺陷并提高有机溶剂的润湿性,从而改善空穴提取并减少界面电荷载流子复合损失。因此,以Cu-Co/4P作为HTL的OSC表现出20.42%的最高功率转换效率(认证值为20.20%)。其特性的通用性和稳定性使Cu-Co/4P HTL成为广泛应用的潜在候选者,特别是在为进一步提高OSC性能提供合理指导方面。