基于 Ru(II)的推挽三元组中的纠缠激发态分支过程

Stephan, Kupfer, Guangjun, Yang, Louis , Blechschmidt, Linda , Zedler, Clara, Zens, Kamil , Witas, Georgina E. , Shillito, Sven , Rau, Benjamin, Dietzek-Ivanšić
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摘要

与三重金属-配体电荷转移(3MLCT)态相比,涉及有机分子的电荷分离(3CS)激发态,如三重配体内或配体-配体电荷转移(3ILCT 和 3LLCT)态,由于与闭壳基态(GS)的自旋轨道耦合较弱,往往具有较长的激发态寿命。因此,将无机发色团和有机发色团结合起来,可以将三重激发态分离到有机发色团上。在此,我们采用光谱-理论联合方法,结合稳态和时间分辨光谱以及量子化学模拟和耗散量子动力学,旨在阐明 Ru(II)-terpyridyl 推挽三元体(RuCl)中的纠缠激发态弛豫过程。我们在半经典马库斯图景中对涉及低洼 3MLCT、3ILCT 和 3LLCT 激发态的基本电子转移(ET)过程的动力学进行了实验和计算研究,从而评估了 3MLCT-3ILCT 和 3MLCT-3LLCT 通道之间的 ET 过程。最后,耗散量子动力学模拟--能够描述涉及所有三种相关状态的不完全 ET 过程--使我们能够揭示强耦合的 3MLCT-3ILCT 状态和弱耦合的 3MLCT/3ILCT-3LLCT 状态之间在短时间尺度和长时间尺度上竞争性的激发态弛豫通道。
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Entangled excited state branching processes in a Ru(II)-based push-pull triad
Compared with triplet metal-to-ligand charge transfer (3MLCT) states, charge-separated (3CS) excited states involving organic moieties, such as triplet intra-ligand or ligand-to-ligand charge transfer (3ILCT and 3LLCT) states, tend to possess longer-lived excited states due to the weak spin-orbit coupling with the closed-shell ground state (GS). Thus, the combination of both inorganic and organic chromophores enables the isolation of triplet excited states onto the organic chromophore. Herein, we aim to elucidate the entangled excited-state relaxation processes in a Ru(II)-terpyridyl push-pull triad (RuCl) in a joint spectroscopic-theoretical approach combining steady-state and time-resolved spectroscopy as well as quantum chemical simulations and dissipative quantum dynamics. The kinetics of the underlying electron transfer (ET) processes involving the low-lying 3MLCT, 3ILCT and 3LLCT excited states were investigated experimentally and computationally within a semi-classical Marcus picture, which allowed us to evaluate the ET processes between along the 3MLCT-3ILCT and the 3MLCT-3LLCT channels. Finally, dissipative quantum dynamical simulations – capable of describing incomplete ET processes involving all three states of interest – enabled us to unravel the competitive excited state relaxation channels at the short timescale vs. at the long timescale among the strongly coupled 3MLCT-3ILCT states as well as the weakly coupled 3MLCT/3ILCT-3LLCT states.
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