Yu Guo, Gao Yixuan, Li Yonghang, Tian Yiran, Zhang Xiaoyu, Han Yandong, Song Jinsheng, Yang Wensheng, Ma Xiaonan
Institute of Molecular Plus, Tianjin University, Tianjin 300072, China.
Engineering Research Center for Nanomaterials, Henan University, Kaifeng 475004, China.
Molecules. 2025 Jun 8;30(12):2513. doi: 10.3390/molecules30122513.
The organic multi-chromophore system has been increasingly attractive due to the potential optoelectronic applications. The inter-chromophore electronic coupling (EC), i.e., and , plays a critical role in determining the relaxation path of the excited state. However, the molecular designing strategy for effective tuning of inter-chromophore EC is still challenging. In this computational work, we designed a series of perylene diimides (PDI) covalent dimers with rigid linking cores containing thiophene (Th) or phenyl (Ph) fragments and performed corresponding theoretical investigation to analyze the inter-PDI electronic coupling. Vibrational analysis indicated that the minimized excited state structural relaxation (ES-SR) can ensure the rigid inter-PDI geometry pre-defined by the topological characteristic of linking cores, leading to comparable || on S and S states. The saddle-shaped linking cores allow collaborative tuning of inter-PDI dihedral () and slipping () angles, leading to effective tuning of inter-PDI || = 0-1000 cm. Our work provides a new molecular designing strategy for effective tuning of inter-chromophore EC for organic chromophores. By using a rigid inter-chromophore structure, the ignorable ES-SR allows simplified molecular designing without considering the plausible geometric difference between S and S states, which might be useful for future applications in organic optoelectronics.
由于潜在的光电应用,有机多发色团体系越来越具有吸引力。发色团间的电子耦合(EC),即 和 ,在决定激发态的弛豫路径中起着关键作用。然而,有效调节发色团间EC的分子设计策略仍然具有挑战性。在这项计算工作中,我们设计了一系列带有含噻吩(Th)或苯基(Ph)片段的刚性连接核的苝二亚胺(PDI)共价二聚体,并进行了相应的理论研究以分析PDI间的电子耦合。振动分析表明,最小化的激发态结构弛豫(ES-SR)能够确保由连接核的拓扑特征预先定义的刚性PDI间几何结构,从而在S态和S态上产生可比的 。鞍形连接核允许协同调节PDI间的二面角( )和滑移角( ),从而有效调节PDI间的 = 0 - 1000 cm。我们的工作为有效调节有机发色团的发色团间EC提供了一种新的分子设计策略。通过使用刚性的发色团间结构,可忽略的ES-SR允许简化分子设计,而无需考虑S态和S态之间可能存在的几何差异,这可能对有机光电子学的未来应用有用。