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首页> 外文期刊>The Journal of Chemical Physics >The molecular origins of nonlinear response in solute energy relaxation: The example of high-energy rotational relaxation
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The molecular origins of nonlinear response in solute energy relaxation: The example of high-energy rotational relaxation

机译:溶质能弛豫中非线性响应的分子起源:高能旋转弛豫的例子

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A key step in solution-phase chemical reactions is often the removal of excess internal energy from the product.Yet,the way one typically studies this process is to follow the relaxation of a solute that has been excited into some distribution of excited states quite different from that produced by any reaction of interest.That the effects of these different excitations can frequently be ignored is a consequence of the near universality of linear-response behavior,the idea that relaxation dynamics is determined by the solvent fluctuations (which may not be all that different for different kinds of solute excitation).Nonetheless,there are some clear examples of linear-response breakdowns seen in solute relaxation,including a recent theoretical and experimental study of rapidly rotating diatomics in liquids.In this paper we use this rotational relaxation example to carry out a theoretical exploration of the conditions that lead to linear-response failure.Some features common to all of the linear-response breakdowns studied to date,including our example,are that the initial solute preparation is far from equilibrium,that the subsequent relaxation promotes a significant rearrangement of the liquid structure,and that the nonequilibrium response is nonstationary.However,we show that none of these phenomena is enough to guarantee a nonlinear response.One also needs a sufficient separation between the solute time scale and that of the solvent geometry evolution.We illustrate these points by demonstrating precisely how our relaxation rate is tied to our liquid-structural evolution,how we can quantitatively account for the initial nonstationarity of our effective rotational friction,and how one can tune our rotational relaxation into and out of linear response.
机译:溶液相化学反应的关键步骤通常是从产物中去除多余的内部能量。然而,人们通常研究此过程的方式是跟随已被激发的溶质松弛成不同的激发态分布通常可以忽略这些不同激发的影响,这是线性响应行为几乎具有普遍性的结果,弛豫动力学是由溶剂波动决定的(这可能不是全部)但是,在溶质弛豫中有一些清晰的线性响应分解的例子,包括最近在液体中快速旋转的双原子的理论和实验研究。本文使用这个旋转弛豫例子进行导致线性响应失效的条件的理论探索。迄今为止,包括我们的例子在内的线性响应分解研究表明,最初的溶质制备远未达到平衡,随后的弛豫促进了液体结构的显着重排,并且非平衡响应是不稳定的。但是,我们证明了这些现象均不足以保证非线性响应,还需要在溶质时间标度和溶剂几何演化的时间标度之间进行足够的分离,我们通过精确地展示我们的弛豫率与液体-结构演化的关系来说明这些问题。 ,我们如何定量地计算有效旋转摩擦的初始非平稳性,以及如何将旋转弛豫调整为线性响应或线性响应之外。

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