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机械力对量子反应速率的影响:量子贝尔公式。

The effect of a mechanical force on quantum reaction rate: quantum Bell formula.

机构信息

Department of Chemistry and Biochemistry and Institute for Computational Engineering and Sciences, University of Texas at Austin, Austin, Texas 78712, USA.

出版信息

J Chem Phys. 2011 Nov 21;135(19):194112. doi: 10.1063/1.3661157.

Abstract

The purpose of this note is to derive a quantum-mechanical analog of Bell's formula, which describes the sensitivity of a chemical reaction to a mechanical pulling force. According to this formula, the reaction rate depends exponentially on the force f, i.e., k(f) ~ exp(f/f(c)), where the force scale f(c) is estimated as the thermal energy k(B)T divided by a distance a between the reactant and transition states along the pulling coordinate. Here I use instanton theory to show that, at low temperatures where quantum tunneling is dominant, this force scale becomes f(c) ~ ℏω/a (in the limit where frictional damping is absent) or f(c) ~ ℏτ(-1)/a (in the strong damping limit). Here ω is a characteristic vibration frequency along the pulling coordinate and τ is a characteristic relaxation time in the reactant state. That is, unlike the classical case where f(c) is unaffected by dissipation, this force scale becomes friction dependent in the quantum limit. I further derive higher-order corrections in the force dependence of the rate, describe generalizations to many degrees of freedom, and discuss connection to other quantum rate theories.

摘要

本注释的目的是推导出一个量子力学的贝尔公式的类比,该公式描述了化学反应对机械拉力的敏感性。根据这个公式,反应速率与力 f 呈指数关系,即 k(f)exp(f/f(c)),其中力标度 f(c)估计为热能 k(B)T 除以沿拉力坐标的反应物和过渡态之间的距离 a。在这里,我使用瞬子理论来表明,在低温下量子隧穿占主导地位,这个力标度变为 f(c)ℏω/a(在没有摩擦阻尼的情况下)或 f(c)~ℏτ(-1)/a(在强阻尼极限下)。这里 ω 是沿拉力坐标的特征振动频率,τ 是反应物状态的特征弛豫时间。也就是说,与经典情况不同,在量子极限下,f(c)不受耗散的影响,这个力标度变得依赖于摩擦力。我进一步推导了速率对力的依赖的高阶修正,描述了对多个自由度的推广,并讨论了与其他量子速率理论的联系。

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