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首页> 外文期刊>The Journal of Chemical Physics >Moving solvated electrons with light: Nonadiabatic mixed quantum/classical molecular dynamics simulations of the relocalization of photoexcited solvated electrons in tetrahydrofuran (THF)
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Moving solvated electrons with light: Nonadiabatic mixed quantum/classical molecular dynamics simulations of the relocalization of photoexcited solvated electrons in tetrahydrofuran (THF)

机译:用光移动溶剂化的电子:四氢呋喃(THF)中光激发的溶剂化电子重新定位的非绝热混合量子/经典分子动力学模拟

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Motivated by recent ultrafast spectroscopic experiments [Martini et al.,Science 293,462 (2001)],which suggest that photoexcited solvated electrons in tetrahydrofuran (THF) can relocalize (that is,return to equilibrium in solvent cavities far from where they started),we performed a series of nonequilibrium,nonadiabatic,mixed quantum/classical molecular dynamics simulations that mimic one-photon excitation of the THF-solvated electron.We find that as photoexcited THF-solvated electrons relax to their ground states either by continuous mixing from the excited state or via nonadiabatic transitions,approx 30% of them relocalize into cavities that can be over 1 nm away from where they originated,in close agreement with the experiments.A detailed investigation shows that the ability of excited THF-solvated electrons to undergo photoinduced relocalization stems from the existence of preexisting cavity traps that are an intrinsic part of the structure of liquid THF.This explains why solvated electrons can undergo photoinduced relocalization in solvents like THF but not in solvents like water,which lack the preexisting traps necessary to stabilize the excited electron in other places in the fluid.We also find that even when they do not ultimately relocalize,photoexcited solvated electrons in THF temporarily visit other sites in the fluid,explaining why the photoexcitation of THF-solvated electrons is so efficient at promoting recombination with nearby scavengers.Overall,our study shows that the defining characteristic of a liquid that permits the photoassisted relocalization of solvated electrons is the existence of nascent cavities that are attractive to an excess electron; we propose that other such liquids can be found from classical computer simulations or neutron diffraction experiments.
机译:受最近的超快光谱实验[Martini等,科学293,462(2001)]的启发,该实验表明光激发的四氢呋喃(THF)中的溶剂化电子可以重新定位(即,在远离溶剂腔的位置返回平衡)。进行了一系列非平衡,非绝热,混合的量子/经典分子动力学模拟,模拟了THF溶剂化电子的单光子激发。我们发现,随着光激发的THF溶剂化电子通过从激发态连续混合而弛豫到其基态。或通过非绝热跃迁,它们中的约30%会重新定位到距其起源可能超过1 nm的腔中,这与实验非常吻合。详细研究表明,受THF溶剂化的电子经历光诱导的重新定位茎的能力源自存在于液体THF结构中固有部分的预先存在的腔阱,这解释了为什么溶剂化El外电子可以在THF之类的溶剂中发生光诱导的重新定位,而在水之类的溶剂中则不能,因为它们缺乏稳定流体中其他位置的激发电子所必需的预先存在的陷阱。我们还发现,即使最终不重新定位,光子也会溶剂化电子。 THF暂时访问流体中的其他位置,这解释了为什么THF溶剂化电子的光激发能如此有效地促进与附近清除剂的重组。总体而言,我们的研究表明,允许溶剂化电子进行光辅助重定位的液体的定义特征是:存在对过量电子具有吸引力的新生腔;我们建议可以从经典计算机模拟或中子衍射实验中找到其他此类液体。

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