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SOLVENT-INDUCED NONADIABATIC TRANSITIONS IN IODINE - AN ULTRAFAST PUMP-PROBE COMPUTATIONAL STUDY

机译:碘中溶剂诱导的非绝热转变-超快泵探针计算研究

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The solvent-induced electronic predissociation [B-->a1(g)((3) Pi)] following an ultrafast X-->B transition in molecular iodine is studied using a classical ensemble representation of Heisenberg's equations of motion, An N electronic state quantum mechanical Hamiltonian is used to derive (coupled) equations of motion for the population (and the coherence) of the different electronic states as well as classicallike coupled equations for the nuclear dynamics (of both the molecule and the solvent) on each electronic state, The ultrafast excitation of the intermediate B state creates a coherent vibrational motion in this bound state. The localized nature of the solvent-induced B-a1(g)((3) Pi) coupling results in a steplike depletion of the excited B state population and hence in a bulletlike appearance of population on the dissociative a1(g)((3) Pi) state twice per vibrational period, The depletion of the B state population and the appearance of products on the a1(g)((3) Pi) state are discussed as a function of solvent density and polarizability. The magnitude of the nonadiabatic B-a1(g)((3) Pi) coupling depends both on the molecule-quencher separation and on the quencher's polarizability. It is found that at all reduced densities the small Ar atom is the most effective quencher (when compared to either Kr and/or Xe). We attribute this unexpected trend to the local density of atoms around the solute molecule. For all the rare gas solvents the local density around the iodine molecule does not quite scale with the global one and there is an observed tendency for the solvent to cluster around the solute in a T-shaped configuration. It is this close-packed configuration that compensates for the smaller polarizability of the Ar atom and hence provides for a more effective quenching. These arguments are used to explain the experimental results which demonstrate that for a series of homologous alkanes the extent of predissociation scales with the length of the molecular chain although the global polarizability density remains roughly constant. (C) 1996 American Institute of Physics. [References: 61]
机译:使用Heisenberg运动方程的经典合奏表示法研究了分子碘中超快X-> B跃迁后溶剂诱导的电子预离解[B-> a1(g)((3)Pi)]状态量子力学哈密顿量用于导出(耦合)不同电子态的总体运动方程(以及相干性),以及用于每个电子态(分子和溶剂的核动力学)的经典耦合方程在该约束状态下,中间B状态的超快激发产生了连贯的振动运动。溶剂诱导的B-a1(g)((3)Pi)耦合的局部性质导致激发的B状态种群呈阶梯状耗尽,因此在解离性a1(g)((3 )Pi)态每个振动周期两次,讨论了B态种群的耗尽和a1(g)((3)Pi)态下产物的出现与溶剂密度和极化率的关系。非绝热B-a1(g)((3)Pi)耦合的大小既取决于分子猝灭剂的间距,又取决于猝灭剂的极化性。发现在所有降低的密度下,小的Ar原子是最有效的淬灭剂(与Kr和/或Xe相比)。我们将此意外趋势归因于溶质分子周围原子的局部密度。对于所有稀有气体溶剂,碘分子周围的局部密度并不完全与整体分子成比例,并且观察到溶剂以T形构型聚集在溶质周围的趋势。正是这种紧密堆积的构型补偿了Ar原子较小的极化率,因此提供了更有效的猝灭。这些论点用于解释实验结果,该结果表明,尽管整体极化率密度大致保持恒定,但对于一系列同源烷烃来说,预离解的程度与分子链的长度成正比。 (C)1996年美国物理研究所。 [参考:61]

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