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三氧化硫与水蒸气反应生成大气硫酸的动力学

Kinetics of Sulfur Trioxide Reaction with Water Vapor to Form Atmospheric Sulfuric Acid.

作者信息

Long Bo, Xia Yu, Zhang Yu-Qiong, Truhlar Donald G

机构信息

College of Materials Science and Engineering, Guizhou Minzu University, Guiyang 550025, China.

Department of Chemistry, Chemical Theory Center, and Supercomputing Institute, University of Minnesota, Minneapolis, Minnesota 55455-0431, United States.

出版信息

J Am Chem Soc. 2023 Sep 13;145(36):19866-19876. doi: 10.1021/jacs.3c06032. Epub 2023 Aug 31.

Abstract

Although experimental methods can be used to obtain the quantitative kinetics of atmospheric reactions, experimental data are often limited to a narrow temperature range. The reaction of SO with water vapor is important for elucidating the formation of sulfuric acid in the atmosphere; however, the kinetics is uncertain at low temperatures. Here, we calculate rate constants for reactions of sulfur trioxide with two water molecules. We consider two mechanisms: the SO···HO + HO reaction and the SO + (HO) reaction. We find that beyond-CCSD(T) contributions to the barrier heights are very large, and multidimensional tunneling, unusually large anharmonicity of high-frequency modes, and torsional anharmonicity are important for obtaining quantitative kinetics. We find that at lower temperatures, the formation of the termolecular precursor complexes, which is often neglected, is rate-limiting compared to passage through the tight transition states. Our calculations show that the SO···HO + HO mechanism is more important than the SO + (HO) mechanism at 5-50 km altitudes. We find that the rate ratio between SO···HO + HO and SO + (HO) is greater than 20 at altitudes between 10 and 35 km, where the concentration of SO is very high.

摘要

虽然实验方法可用于获取大气反应的定量动力学,但实验数据往往局限于较窄的温度范围。SO与水蒸气的反应对于阐明大气中硫酸的形成很重要;然而,低温下的动力学尚不确定。在此,我们计算了三氧化硫与两个水分子反应的速率常数。我们考虑了两种机制:SO···HO + HO反应和SO + (HO)₂反应。我们发现超越耦合簇单双激发组态相互作用并包含微扰三重激发(beyond-CCSD(T))对势垒高度的贡献非常大,多维隧穿、高频模式异常大的非谐性以及扭转非谐性对于获得定量动力学很重要。我们发现,在较低温度下,通常被忽略的三分子前体复合物的形成相比于通过紧密过渡态是限速步骤。我们的计算表明,在5 - 50千米高度,SO···HO + HO机制比SO + (HO)₂机制更重要。我们发现,在10至35千米高度,SO浓度非常高,SO···HO + HO与SO + (HO)₂之间的速率比大于20。

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