He Hong-Qing, Liu Jing-Yao, Li Ze-Sheng, Sun Chia-Chung
Institute of Theoretical Chemistry, State Key Laboratory of Theoretical and Computational Chemistry, Jilin University, Changchun 130023, P. R. China.
J Comput Chem. 2005 Apr 30;26(6):642-50. doi: 10.1002/jcc.20202.
A direct dynamics method is employed to study the kinetics of the multiple channel reaction CH(3)OCl + Cl. The potential energy surface (PES) information is explored from ab initio calculations. Two reaction channels, Cl- and H-abstractions, have been identified. The optimized geometries and frequencies of the stationary points and the minimum-energy paths (MEPs) are calculated at the MP2 level of theory using the 6-311G(d, p) and cc-pVTZ basis sets, respectively. The single-point energies along the MEPs are further refined at the G3(MP2)//MP2/6-311G(d, p), G3//MP2/6-311G(d, p), as well as by the multicoefficient correlation method based on QCISD (MC-QCISD) using the MP2/cc-pVTZ geometries. The enthalpies of formation for the species CH(3)OCl and CH(2)OCl are calculated via isodesmic reactions. The rate constants of the two reaction channels are evaluated by using the variational transition-state theory over a wide range of temperature, 220-2200 K. The calculated rate constants exhibit the slightly negative temperature dependence and show good agreement with the available experimental data at room temperature at the G3(MP2)//MP2/6-311G(d, p) level. The present calculations indicate that the two channels are competitive at low temperatures while H-abstraction plays a more important role with the increase of temperature. The calculated k(1a)/k(1) ratio of 0.5 at 298 K is in general agreement with the experimental one, 0.8 +/- 0.2. The high rate constant for CH(3)OCl + Cl shows that removal by reaction with Cl atom is a potentially important loss process for CH(3)OCl in the polar stratosphere.
采用直接动力学方法研究多通道反应CH(3)OCl + Cl的动力学。通过从头算计算探索势能面(PES)信息。已确定了两个反应通道,即Cl-夺取和H-夺取。分别使用6-311G(d, p)和cc-pVTZ基组在MP2理论水平上计算了驻点的优化几何结构和频率以及最小能量路径(MEP)。沿着MEP的单点能量在G3(MP2)//MP2/6-311G(d, p)、G3//MP2/6-311G(d, p)以及基于QCISD(MC-QCISD)的多系数相关方法下,使用MP2/cc-pVTZ几何结构进一步优化。通过等键反应计算了CH(3)OCl和CH(2)OCl物种的生成焓。使用变分过渡态理论在220 - 2200 K的宽温度范围内评估了两个反应通道的速率常数。计算得到的速率常数呈现出略微的负温度依赖性,并且在G3(MP2)//MP2/6-311G(d, p)水平下与室温下可用的实验数据显示出良好的一致性。目前的计算表明,这两个通道在低温下具有竞争性,而随着温度升高,H-夺取起更重要的作用。在298 K时计算得到的k(1a)/k(1)比值为0.5,与实验值0.8 +/- 0.2总体一致。CH(3)OCl + Cl的高速率常数表明,与Cl原子反应去除是CH(3)OCl在极地平流层中潜在的重要损失过程。