首页> 外文期刊>Chemphyschem: A European journal of chemical physics and physical chemistry >Intramolecular Charge Transfer and Solvation of Photoactive Molecules with Conjugated Push-Pull Structures
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Intramolecular Charge Transfer and Solvation of Photoactive Molecules with Conjugated Push-Pull Structures

机译:共轭推挽结构的光敏分子的分子内电荷转移和溶剂化

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摘要

A comparative investigation on the photophysical properties and solvation-related ICT dynamics of three push-pull compounds containing different donors including carbazole, triphenylamine and phenothiazine, was performed. The steady-state spectra and theoretical calculations show the charge transfers from the central donors to the acceptors at each side. The characterization of the extent of charge transfer was determined by various means, including estimation of the dipole moment, the electron density distribution of HOMO and LUMO, CDD and change in Gibb's free energy, which show the charge transfer strength to be in the order PDHP > BDHT > PDHC. This suggests that the electron-donating ability of the donor groups plays a crucial role in the charge transfer in these compounds. The TA data show the excited-state relaxation dynamics follow a sequential model: FCICTICTS0, and are affected by the solvent polarity. The results presented here demonstrate that the compound with a higher degree of ICT characteristic interacts more strongly with stronger polar solvent molecules, which can accelerate the solvation and spectral evolution to lower energy levels. The A--D--A architectures with prominent ICT characteristics based on carbazole, triphenylamine and phenothiazine might be potential scaffolds for light-harvesting and photovoltaic devices. These results are of value for understanding structure-property relationships and the rational design of functional materials for photoelectric applications.
机译:对包含不同供体的三种推拉化合物(包括咔唑,三苯胺和吩噻嗪)的光物理性质和与溶剂化相关的ICT动力学进行了比较研究。稳态光谱和理论计算表明,电荷从中心供体转移到两侧的受体。电荷转移程度的表征是通过各种方法确定的,包括偶极矩的估算,HOMO和LUMO的电子密度分布,CDD以及吉布自由能的变化,这表明电荷转移强度约为PDHP。 > BDHT> PDHC。这表明供体基团的电子给体能力在这些化合物的电荷转移中起关键作用。 TA数据显示激发态弛豫动力学遵循顺序模型:FCICTICTS0,并受溶剂极性的影响。此处显示的结果表明,具有较高ICT特性的化合物与较强的极性溶剂分子相互作用更强,可以将溶剂化和光谱演化加速至较低的能级。基于咔唑,三苯胺和吩噻嗪的具有突出ICT特性的A--D--A体系结构可能是光收集和光伏设备的潜在支架。这些结果对于理解结构-特性关系以及对光电应用功能材料的合理设计具有价值。

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