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9,10-双(苯乙炔基)蒽二聚体中距离依赖的对称破缺电荷转移

Distance-Dependent Symmetry-Breaking Charge Transfer in 9,10- Bis(phenylethynyl)anthracene Dimers.

作者信息

Wang Xianyuan, Lv Liping, Li Tianyu, Chen Chen, Fan Xiaonan, Cui Boce, Tang Linglong, Chen Yanli, Liu Heyuan, Li Xiyou

机构信息

School of Materials Science and Engineering, China University of Petroleum (East China), Qingdao, 266580, China.

出版信息

Chemistry. 2025 Jan 9;31(2):e202403125. doi: 10.1002/chem.202403125. Epub 2024 Nov 20.

DOI:10.1002/chem.202403125
PMID:39506831
Abstract

To investigate the effect of the through-bond coupling strength on the symmetry-breaking charge separation (SB-CS) dynamics and mechanism, three 9,10-bis((4-hexylphenyl)ethynyl)anthracene dimers with varying distances, viz., a single-bond linked dimer (0-dimer), a phenylene linked dimer (1-dimer) and a para-biphenylene linked dimer (2-dimer), were synthesized and studied systematically using steady-state and transient spectroscopy. Steady-state absorption spectra revealed that the electronic coupling strength decreased gradually with the increase of the inter-chromophore distance, and the transition of S→S includes the dark charge transfer (CT) excitation. fs-TA spectra demonstrated that SB-CS could be conducted in both weakly and highly polar solvents for 0-dimer, but the SB-CS dynamics has a significant difference. In weakly polar solvents, SB-CS only produces the partial CT (PCT) state, but it could generate the CT state via the PCT state in highly polar solvent. In comparison, SB-CS is only proceeded in highly polar solvents in 1-dimer and 2-dimer to produce the CT state directly. These results demonstrate that the SB-CS dynamics is strongly dependent on the inter-chromophore electronic coupling, and the relatively strong electronic coupling is crucial for the occurrence of SB-CS in weakly polar environment that is commonly presented in photoelectric devices.

摘要

为了研究贯穿键耦合强度对对称性破缺电荷分离(SB-CS)动力学及机制的影响,合成了三种具有不同间距的9,10-双((4-己基苯基)乙炔基)蒽二聚体,即单键连接的二聚体(0-二聚体)、亚苯基连接的二聚体(1-二聚体)和对亚联苯基连接的二聚体(2-二聚体),并使用稳态和瞬态光谱对其进行了系统研究。稳态吸收光谱表明,电子耦合强度随着发色团间距离的增加而逐渐降低,且S→S跃迁包含暗电荷转移(CT)激发。飞秒时间分辨吸收光谱(fs-TA)表明,0-二聚体在弱极性和强极性溶剂中均能发生SB-CS,但SB-CS动力学存在显著差异。在弱极性溶剂中,SB-CS仅产生部分电荷转移(PCT)态,但在强极性溶剂中它可通过PCT态产生CT态。相比之下,1-二聚体和2-二聚体中的SB-CS仅在强极性溶剂中发生,直接产生CT态。这些结果表明,SB-CS动力学强烈依赖于发色团间的电子耦合,相对较强的电子耦合对于在光电器件中常见的弱极性环境中发生SB-CS至关重要。

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