首页> 外文期刊>The Journal of Chemical Physics >A study of molecular vibrational relaxation mechanism in condensed phase based upon mixed quantum-classical molecular dynamics.I.A test of IBC model for the relaxation of a nonpolar solute in nonpolar solvent high density
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A study of molecular vibrational relaxation mechanism in condensed phase based upon mixed quantum-classical molecular dynamics.I.A test of IBC model for the relaxation of a nonpolar solute in nonpolar solvent high density

机译:基于混合量子经典分子动力学的凝聚相分子振动弛豫机理研究。I.IBC模型在高密度非极性溶剂中非极性溶质弛豫的试验

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In order to investigate vibrational relaxation mechanism in condensed phase,a series of mixed quantum-classical molecular dynamics calculations have been executed for nonpolar solute in nonpolar solvent and polar solute in polar solvent.In the first paper (Paper I),relaxation mechanism of I_2 in Ar,where Lennard-Jones force is predominant in the interaction,is investigated as a function of density and temperature,focusing our attention on the isolated binary collision (IBC) model.The model was originally established for the relaxation in gas phase.A key question,here,is "can we apply the IBC model to the relaxation in the high-density fluid?" Analyzing the trajectory of solvent molecule as well as its interaction with the solute,we found that collisions between them may be denned clearly even in the high-density fluid.Change of the survival probability of the vibrationally first excited state on collision was traced.The change caused by collisions with a particular solvent molecule was also traced together with the interaction between them.Each collision makes a contribution to the relaxation by a stepwise change in the probability.The analysis clearly shows that the relaxation is caused by collisions even in the high-density fluid.The difference between stepwise relaxation and the continuous one found for the total relaxation in the low-density fluid and in the high-density one,respectively,was clarified to come from just the difference in frequency of the collision.The stronger the intensity of the collision is,the greater the relaxation caused by the collision is.Further,the shorter the collision time is,the greater the resultant relaxation is.The discussion is followed by the succeeding paper (Paper II),where we report that molecular mechanism of the relaxation of a polar molecule in supercritical water is significantly different from that assumed in the IBC model despite that the density dependence of the relaxation rate showed a linear correlation with the local density of water around the solute,the linear correlation being apparently in good accordance with the IBC model.The puzzle will be solved in Paper II.
机译:为了研究凝聚相中的振动弛豫机理,对非极性溶剂中的非极性溶质和极性溶剂中的极性溶质进行了一系列混合的量子经典分子动力学计算。在第一篇论文(论文I)中,I_2的弛豫机理在Ar中,以Lennard-Jones力为主的相互作用中,研究了密度和温度的函数,重点是孤立二元碰撞(IBC)模型。该模型最初是为气相弛豫而建立的。这里的关键问题是“我们可以将IBC模型应用于高密度流体的弛豫吗?”通过分析溶剂分子的轨迹及其与溶质的相互作用,我们发现即使在高密度流体中,它们之间的碰撞也可以被清晰地分辨出来。跟踪了振动第一激发态在碰撞时的存活概率的变化。还跟踪了与特定溶剂分子碰撞引起的变化以及它们之间的相互作用,每次碰撞都通过概率的逐步变化而对弛豫做出了贡献。分析清楚地表明,即使在高温下,弛豫也是由碰撞引起的在低密度流体和高密度流体中,分别发现了逐步弛豫和连续弛豫之间的总弛豫之间的差异,原因仅在于碰撞频率的差异。碰撞的强度越大,由碰撞引起的松弛越大。此外,碰撞时间越短,则碰撞的强度越大。随后的论文(论文II)进行了讨论,在该论文中,我们报道了极性分子在超临界水中弛豫的分子机理与IBC模型中假定的显着不同,尽管弛豫率与溶质周围水的局部密度呈线性关系,线性关系显然与IBC模型相吻合。这一难题将在论文二中解决。

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