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三种等电子多阱反应体系的比较:OH + CH2O、OH + CH2CH2 和 OH + CH2NH。

Comparison of Three Isoelectronic Multiple-Well Reaction Systems: OH + CH2O, OH + CH2CH2, and OH + CH2NH.

作者信息

Akbar Ali Mohamad, Barker John R

机构信息

Department of Atmospheric, Ocean, and Space Sciences, The University of Michigan, Ann Arbor, Michigan 48109-2143, United States.

出版信息

J Phys Chem A. 2015 Jul 16;119(28):7578-92. doi: 10.1021/acs.jpca.5b00910. Epub 2015 Apr 16.

Abstract

Methylenimine (CH2NH) has been predicted to be a product of the atmospheric photo-oxidation of methylamine, but its atmospheric reactions have not been measured. In this paper, we report potential energy surfaces (PESs) and rate constants for OH + CH2NH and its isoelectronic analogues OH + CH2O and OH + CH2CH2, which are more fully understood. The PESs were computed using the BHandHLYP/aug-cc-pVTZ and CCSD(T)/aug-cc-pVTZ levels of theory. Canonical variational transition state theory and Rice-Ramsperger-Kassel-Marcus and master equation modeling were used to calculate temperature- and pressure-dependent rate constants, with particular emphasis on the OH + reactant entrance channels and the effects of prereactive complexes. The computed results are in reasonable agreement with experimental data where they can be compared and also with the results of previous theoretical calculations. The results show that to some extent OH radicals both add to the carbon center double bond in CH2NH and abstract methylene hydrogen atoms, as in the OH + CH2O and OH + CH2CH2 reactions, respectively, but the dominant pathway is abstraction of the hydrogen from N-H. The computed rate constants are suitable for both atmospheric and combustion modeling.

摘要

甲亚胺(CH₂NH)被预测为甲胺大气光氧化的产物,但其大气反应尚未得到测定。在本文中,我们报告了OH + CH₂NH及其等电子类似物OH + CH₂O和OH + CH₂CH₂的势能面(PESs)和速率常数,这些反应已得到更充分的理解。使用BHandHLYP/aug-cc-pVTZ和CCSD(T)/aug-cc-pVTZ理论水平计算了势能面。采用正则变分过渡态理论以及Rice-Ramsperger-Kassel-Marcus和主方程模型来计算与温度和压力相关的速率常数,特别关注OH +反应物入口通道以及预反应复合物的影响。计算结果与可比较的实验数据以及先前理论计算结果合理一致。结果表明,在一定程度上,OH自由基既加成到CH₂NH中的碳中心双键上,分别如同在OH + CH₂O和OH + CH₂CH₂反应中那样夺取亚甲基氢原子,但主要途径是从N - H中夺取氢。计算得到的速率常数适用于大气和燃烧模拟。

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