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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Numerical Simulations of Ultrafast Charge Separation Dynamics from Second Excited State of Directly Linked Zinc-Porphyrin-Imide Dyads and Ensuing Hot Charge Recombination into the First Excited State
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Numerical Simulations of Ultrafast Charge Separation Dynamics from Second Excited State of Directly Linked Zinc-Porphyrin-Imide Dyads and Ensuing Hot Charge Recombination into the First Excited State

机译:直接连接的锌-卟啉-亚胺二联体第二激发态超快电荷分离动力学的数值模拟,并使热电荷复合成第一激发态

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摘要

A model of the intramolecular charge separation from the second singlet excited-state of directly linked Zn-porphyrin-imide dyads and following charge recombination into the first singlet excited-state has been constructed and investigated. The model incorporates three electronic states (the first and the second singlet excited and charge separated states) as well as their vibrational sublevels. Dynamics of the transitions between these states are described in the framework of the stochastic point-transition approach. The relaxation of the intramolecular high frequency vibrational mode is supposed to occur as a single-quantum transition between nearest states with a time constant depending on the number of the vibrational state. The medium relaxation is characterized by two timescales. A good fitting to experimentally observed population dynamics of both the first and the second singlet excited states has been obtained. The calculations show the charge recombination into the first excited-state to proceed in a hot stage in parallel with the relaxation of both the medium and the intramolecular high-frequency vibrational mode.
机译:建立并研究了分子模型中分子电荷从直接连接的Zn-卟啉-亚胺二联体的第二个单重态激发态分离出来,然后将电荷重组为第一个单重态激发态的模型。该模型包含三个电子状态(第一和第二个单重态激发态和电荷分离态)及其振动子级。这些状态之间的转换动力学是在随机点转换方法的框架中描述的。分子内高频振动模式的弛豫被认为是在最接近的状态之间具有时间常数的单量子跃迁,该时间常数取决于振动状态的数目。中等弛豫的特征在于两个时间尺度。已经获得了对第一和第二单线态激发态的实验观察到的种群动力学的良好拟合。计算结果表明,电荷重新复合为第一激发态,并在热阶段进行,与介质和分子内高频振动模式的松弛同时进行。

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