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氯原子从氯甲烷中原子态氯的抽氢反应动力学的理论研究。

Theoretical study of the kinetics of chlorine atom abstraction from chloromethanes by atomic chlorine.

机构信息

Department of Physical Chemistry, Wroclaw Medical University, pl. Nankiera 1, 50-140, Wroclaw, Poland,

出版信息

J Mol Model. 2013 Oct;19(10):4181-93. doi: 10.1007/s00894-013-1779-y. Epub 2013 Mar 2.

Abstract

Ab initio calculations at the G3 level were used in a theoretical description of the kinetics and mechanism of the chlorine abstraction reactions from mono-, di-, tri- and tetra-chloromethane by chlorine atoms. The calculated profiles of the potential energy surface of the reaction systems show that the mechanism of the studied reactions is complex and the Cl-abstraction proceeds via the formation of intermediate complexes. The multi-step reaction mechanism consists of two elementary steps in the case of CCl4 + Cl, and three for the other reactions. Rate constants were calculated using the theoretical method based on the RRKM theory and the simplified version of the statistical adiabatic channel model. The temperature dependencies of the calculated rate constants can be expressed, in temperature range of 200-3,000 K as [Formula: see text]. The rate constants for the reverse reactions CH3/CH2Cl/CHCl2/CCl3 + Cl2 were calculated via the equilibrium constants derived theoretically. The kinetic equations [Formula: see text] allow a very good description of the reaction kinetics. The derived expressions are a substantial supplement to the kinetic data necessary to describe and model the complex gas-phase reactions of importance in combustion and atmospheric chemistry.

摘要

采用 G3 水平的从头算方法对氯原子从一氯甲烷、二氯甲烷、三氯甲烷和四氯甲烷中脱氯的反应动力学和反应机理进行了理论描述。反应体系势能面的计算结果表明,所研究反应的机理较为复杂,氯的脱除是通过形成中间络合物进行的。对于 CCl4 + Cl 的反应,多步反应机理由两个基元步骤组成,而对于其他反应则由三个基元步骤组成。速率常数是基于 RRKM 理论和简化的统计绝热通道模型的理论方法计算得到的。在所研究的温度范围内(200-3000 K),计算得到的速率常数可以表示为 [Formula: see text]。通过理论推导的平衡常数计算了逆反应 CH3/CH2Cl/CHCl2/CCl3 + Cl2 的速率常数。推导出的动力学方程 [Formula: see text] 能够很好地描述反应动力学。这些表达式是对描述和模拟燃烧和大气化学中重要的复杂气相反应所必需的动力学数据的重要补充。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f57/3778224/93cc1dae8045/894_2013_1779_Fig1_HTML.jpg

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