Liu Wenxu, Wen Junjie, Yu Haicheng, Zhan Xin, Wang Yuxing, Zhang Lei, Fan Yanhui, You Zuhao, Liu Yao
State Key Laboratory of Chemical Resource Engineering, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, College of Chemistry, Beijing University of Chemical Technology, Beijing, 100029, China.
Angew Chem Int Ed Engl. 2025 Jan 2;64(1):e202413135. doi: 10.1002/anie.202413135. Epub 2024 Oct 17.
A novel class of thienyltriazine triamides (TTTAs) was facile synthesized and firstly used as cathode interlayers (CILs) for organic solar cells (OSCs). By utilizing different aromatic arms and pendant polar groups, their optoelectronic properties and aggregation behaviors were effectively modulated. The combination of thienyltriazine (TT) core, naphthylamide arm and imidazole pendant group endows TT-N-M with suitable energy levels, intensified work function tunability, higher conductivity, and well-balanced crystallinity and film-forming ability, boosting both the performance and stability of OSCs significantly. Remarkably, the solar cell efficiency remains stable at around 90 % of the optimal efficiency even as the interlayer thickness varied from 5 to 95 nm, demonstrating its insensitivity to thickness. Moreover, TT-N-M exhibits compatibility with various active layer systems, achieving a maximum efficiency of 19.60 % for single-junction solar cell. Its exceptional tolerance to thickness fluctuations and performance establishes a new benchmark for multi-armed CIL-based OSCs, also positioning them among the most high-performing CIL materials documented thus far. This work not only broadens the scope of CIL materials for OSCs but also offers deep insights into design strategies and structure-properties relationships, being beneficial for the future development of more efficient CIL materials for organic optoelectronic applications.
一类新型的噻吩基三嗪三酰胺(TTTAs)被简便合成,并首次用作有机太阳能电池(OSCs)的阴极界面层(CILs)。通过利用不同的芳香臂和侧链极性基团,它们的光电性能和聚集行为得到了有效调控。噻吩基三嗪(TT)核、萘酰胺臂和咪唑侧基的组合赋予了TT-N-M合适的能级、增强的功函数可调性、更高的导电性以及平衡良好的结晶度和成膜能力,显著提高了OSCs的性能和稳定性。值得注意的是,即使中间层厚度从5纳米变化到95纳米,太阳能电池效率仍保持在最佳效率的90%左右,表明其对厚度不敏感。此外,TT-N-M与各种活性层体系具有兼容性,单结太阳能电池的最大效率达到了19.60%。其对厚度波动的出色耐受性和性能为基于多臂CIL的OSCs树立了新的标杆,也使其跻身迄今为止记录的最高性能CIL材料之列。这项工作不仅拓宽了OSCs的CIL材料范围,还为设计策略和结构-性能关系提供了深刻见解,有利于未来开发更高效的用于有机光电子应用的CIL材料。