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氢与碳氢化合物反应的量子反应散射

Quantum reactive scattering of H + hydrocarbon reactions.

作者信息

Kerkeni Boutheïna, Clary David C

机构信息

Physical and Theoretical Chemistry Laboratory, University of Oxford, South Parks Road, Oxford, UK OX1 3QZ.

出版信息

Phys Chem Chem Phys. 2006 Feb 28;8(8):917-25. doi: 10.1039/b514563p. Epub 2006 Jan 20.

Abstract

A practical quantum-dynamical method is described for predicting accurate rate constants for general chemical reactions. The ab initio potential energy surfaces for these reactions can be built from a minimal number of grid points (average of 50 points) and expressed in terms of analytical functionals. All the degrees of freedom except the breaking and forming bonds are optimised using the MP2 method with a cc-pVTZ basis set. Single point energies are calculated on the optimised geometries at the CCSD(T) level of theory with the same basis set. The dynamics of these reactions occur on effective reduced dimensionality hyper-surfaces accounting for the zero-point energy of the optimised degrees of freedom. Bonds being broken and formed are treated with explicit hyperspherical time independent quantum dynamics. Application of the method to the H + CH(4)--> H(2)+ CH(3), H + C(2)H(6)--> H(2)+ C(2)H(5), H + C(3)H(8)--> H(2)+n-C(3)H(7)/H(2)+i-C(3)H(7) and H + CH(3)OH --> H(2)+ CH(3)O/H(2)+ CH(2)OH reactions illustrate the potential of the approach in predicting rate constants, kinetic isotope effects and branching ratios. All studied reactions exhibit large quantum tunneling in the rate constants at lower temperatures. These quantum calculations compare well with the experimental results.

摘要

描述了一种实用的量子动力学方法,用于预测一般化学反应的精确速率常数。这些反应的从头算势能面可以由最少数量的网格点(平均50个点)构建,并以解析泛函表示。除了断裂和形成的键之外,所有自由度都使用具有cc-pVTZ基组的MP2方法进行优化。在相同基组下,在CCSD(T)理论水平上对优化后的几何结构计算单点能量。这些反应的动力学发生在考虑优化自由度零点能的有效降维超曲面上。断裂和形成的键用显式超球时间无关量子动力学处理。将该方法应用于H + CH(4)--> H(2)+ CH(3)、H + C(2)H(6)--> H(2)+ C(2)H(5)、H + C(3)H(8)--> H(2)+n-C(3)H(7)/H(2)+i-C(3)H(7)以及H + CH(3)OH --> H(2)+ CH(3)O/H(2)+ CH(2)OH反应,说明了该方法在预测速率常数、动力学同位素效应和分支比方面的潜力。所有研究的反应在较低温度下的速率常数中都表现出较大的量子隧穿。这些量子计算与实验结果吻合良好。

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