Kerkeni Boutheina, Clary David C
Physical and Theoretical Chemistry Laboratory, University of Oxford, South Parks Road, Oxford OX1 3QZ, United Kingdom.
J Chem Phys. 2004 Feb 1;120(5):2308-18. doi: 10.1063/1.1635816.
A general and practical procedure is described for calculating rate constants for chemical reactions using a minimal number of ab initio calculations and quantum-dynamical computations. The method exploits a smooth interpolating functional developed in the hyperspherical representation. This functional is built from two Morse functions and depends on a relatively small number of parameters with respect to conventional functionals developed to date. Thus only a small number of ab initio points needs to be computed. The method is applied to the H + CH4 --> H2 + CH3 reaction. The quantum scattering calculations are performed treating explicitly the bonds being broken and formed. All the degrees of freedom except the breaking and forming bonds are optimized ab initio and harmonic vibrational frequencies and zero-point energies for them are calculated at the MP2(full) level with a cc-pVTZ basis set. Single point energies are calculated at a higher level of theory with the same basis set, namely CCSD(T, full). We report state-to-state cross sections and thermal rate constants for the title reaction and make comparisons with previous results. The calculated rate constants are in good agreement with experiments.
描述了一种通用且实用的程序,用于使用最少数量的从头算计算和量子动力学计算来计算化学反应的速率常数。该方法利用了在超球表示中开发的平滑插值泛函。此泛函由两个莫尔斯函数构建而成,相对于迄今为止开发的传统泛函,它依赖于相对较少的参数。因此,只需要计算少量的从头算点。该方法应用于H + CH4 --> H2 + CH3反应。进行量子散射计算时明确处理了断裂和形成的键。除了断裂和形成的键之外的所有自由度都进行了从头算优化,并在MP2(全)水平上使用cc-pVTZ基组计算了它们的谐振动频率和零点能。使用相同的基组在更高的理论水平上计算单点能量,即CCSD(T,全)。我们报告了标题反应的态态截面和热速率常数,并与先前的结果进行了比较。计算得到的速率常数与实验结果吻合良好。