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A general expession for the condensation coefficient based on transition state theory and molecular dynamics simulation

机译:基于过渡态理论和分子动力学模拟的缩合系数通式

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A theoretical derivation of condensation coefficient based on transition state theory is presented in this paper by considering the three-dimensional movement of condensing molecules in the liquid-vapor interface region. The theoretical expression is a function of free volume ratio of liqueid to vapor interface region. The theoretical expression is a function of free volume ratio of liquid to vapor and activation energy for condensation. We have developed an evaluation of the activated state conditions in the nterfact region with the use of molecular dynamics (MD) simulations for argon and water. From the molecular scale consideration, it is found that a characteristic length ratio (V~l/V~g)~(1) has an important role in evaluating the condensation coefficient because the restricted translational motion is dominant in the condensation process compared with the rotational motion. Present theoretical values agree well with MD results in both monatomic and polyatomic polar molecules. Finally, we conclude that the condensation coefficient is an inherent physical property of a given pure liquid-vapor interface and the interface structure plays a primary role in condensation.
机译:提出了一种基于过渡态理论的缩合系数理论推导方法,其中考虑了冷凝分子在液-气界面区域的三维运动。理论表达式是液体与蒸气界面区域的自由体积比的函数。理论表达式是液体与蒸气的自由体积比和冷凝的活化能的函数。我们已经利用对氩气和水的分子动力学(MD)模拟技术,对互感区域中的活化态条件进行了评估。从分子尺度考虑,发现特征长度比(V〜l / V〜g)〜(1 / n)在评估缩合系数中起重要作用,因为相比于缩合过程,受限制的平移运动占主导随着旋转运动。目前的理论值与单原子和多原子极性分子中的MD结果非常吻合。最后,我们得出结论,凝结系数是给定纯液-气界面的固有物理特性,并且界面结构在凝结中起主要作用。

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