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非谐性对单分子反应的影响及其在乙烯光解离中的应用。

Anharmonic effect on unimolecular reactions with application to the photodissociation of ethylene.

作者信息

Yao L, Mebel A M, Lu H F, Neusser H J, Lin S H

机构信息

Department of Physics, Dalian Maritime University, Dalian 116023, China.

出版信息

J Phys Chem A. 2007 Jul 26;111(29):6722-9. doi: 10.1021/jp069012i. Epub 2007 May 10.

Abstract

The importance of anharmonic effect on dissociation of molecular systems, especially clusters, has been noted. In this paper, we shall present a theoretical approach that can carry out the first principle calculations of anharmonic canonical and microcanonical rate constants of unimolecular reactions within the framework of transition state theory. In the canonical case, it is essential to calculate the partition function of anharmonic oscillators; for convenience, the Morse oscillator potential will be used for demonstration in this paper. In the microcanical case, which involves the calculation of the total number of states for the activated complex and the density of states for the reactant, we make use of the fact that both the total number of states and the density of states can be expressed in the inverse Laplace transformation of the partition functions and that the inverse Laplace transformation can in turn be carried out by using the saddle-point method. We shall also show that using the theoretical approach presented in this paper the total number of states and density of states can be determined from thermodynamic properties and the difference between the method used in this paper and the thermodynamic model used by Krems and Nordholm will be given. To demonstrate the application of our theoretical approach, we chose the photodissociation of ethylene at 157 and 193 nm as an example.

摘要

非谐效应在分子体系尤其是团簇解离中的重要性已受到关注。在本文中,我们将提出一种理论方法,该方法能够在过渡态理论框架内对单分子反应的非谐正则和微正则速率常数进行第一性原理计算。在正则情形下,计算非谐振子的配分函数至关重要;为方便起见,本文将使用莫尔斯振子势进行演示。在微正则情形下,这涉及到计算活化络合物的总态数和反应物的态密度,我们利用这样一个事实,即总态数和态密度都可以用配分函数的拉普拉斯逆变换来表示,并且拉普拉斯逆变换又可以通过鞍点法来进行。我们还将表明,使用本文提出的理论方法,可以从热力学性质确定总态数和态密度,并给出本文所采用方法与Krems和Nordholm所使用的热力学模型之间的差异。为了演示我们理论方法的应用,我们选择了乙烯在157和193 nm处的光解离作为示例。

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