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首页> 外文期刊>The Journal of Chemical Physics >Electronic relaxation dynamics of Ni~(2+)-ion aqueous solution:Molecular-dynamics simulation
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Electronic relaxation dynamics of Ni~(2+)-ion aqueous solution:Molecular-dynamics simulation

机译:Ni〜(2 +)-离子水溶液的电子弛豫动力学:分子动力学模拟

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Electronic relaxation dynamics of Ni~(2+)-ion aqueous solution is investigated using molecular-dynamics (MD) simulations with the model-effective Hamiltonian developed previously.The nonadiabatic transition rates from the first three excited states to the ground state are evaluated by the golden rule formula with the adiabatic MD simulations.The MD simulations with the fewest-switch surface-hopping method are also carried out to obtain a more detailed description of the electronic relaxation dynamics among the excited states.We found out that the transitions among the three excited states are very fast,in the order of 10 fs,while the transition between the excited and ground states is slow,about 800 ps.These findings are consistent with the time scales of energy dissipation detected by the transient lens experiment.In both simulations,we explore the effects of the quantum decoherence,where the decoherence functions are derived by the energy-gap dynamics with the displaced harmonic-oscillator model.
机译:利用分子动力学(MD)模拟方法研究了模型有效的哈密顿量,研究了Ni〜(2 +)-离子水溶液的电子弛豫动力学,并通过前驱激发态向基态的非绝热转变速率进行了评价。我们还用最少的跳频跳面方法进行了MD仿真,以更详细地描述激发态之间的电子弛豫动力学。三种激发态都非常快,大约为10 fs,而激发态和基态之间的转换很慢,大约为800 ps。这些发现与瞬态透镜实验检测到的能量耗散的时间尺度一致。模拟中,我们探索了量子退相干的影响,其中退相干函数是由带隙谐波的能隙动力学导出的后期模型。

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