Laboratory of Molecular Structure and Dynamics, Institute of Chemistry, Eötvös University, H-1518, Budapest 112, P.O. Box 32, Hungary.
J Phys Chem A. 2013 Aug 1;117(30):6409-20. doi: 10.1021/jp4038107. Epub 2013 Jul 18.
We report quasiclassical trajectory calculations of the integral and differential cross sections and the mode-specific product state distributions for the "central-barrier" O((3)P) + CH4/CD4(vk = 0, 1) [k = 1, 2, 3, 4] reactions using a full-dimensional ab initio potential energy surface. The mode-specific vibrational distributions for the polyatomic methyl products are obtained by doing a normal-mode analysis in the Eckart frame, followed by standard histogram binning (HB) and energy-based Gaussian binning (1GB). The reactant bending excitations slightly enhance the reactivity, whereas stretching excitations activate the reaction more efficiently. None of the reactant vibrational excitations is as efficient as an equivalent amount of translational energy to promote the reactions. The excitation functions without product zero-point energy (ZPE) constraint are in good agreement with previous 8-dimensional quantum mechanical (QM) results for the ground-state and stretching-excited O + CH4 reactions, whereas for the bending-excited reactions the soft ZPE constraint, which is applied to the sum of the product vibrational energies, provides better agreement with the QM cross sections. All angular distributions show the dominance of backward scattering indicating a direct rebound mechanism, in agreement with experiment. The title reactions produce mainly OH/OD(v = 0) products for all the initial states. HB significantly overestimates the populations of OH/OD(v = 1), especially in the energetic threshold regions, whereas 1GB provides physically correct results. The CH3/CD3 vibrational distributions show dominant populations for ground (v = 0), umbrella-excited (v2 = 1, 2), in-plane-bending-excited (v4 = 1), and v2 + v4 methyl product states. Neither translational energy nor reactant vibrational excitation transfers significantly into product vibrations.
我们报道了使用全维从头算势能面,对“中心势垒”O((3)P) + CH4/CD4(vk = 0, 1) [k = 1, 2, 3, 4]反应的积分和微分截面以及特定模式产物态分布的准经典轨迹计算。通过在 Eckart 框架中进行正则模式分析,然后进行标准直方图-bin(HB)和基于能量的高斯-bin(1GB),获得多原子甲基产物的特定模式振动分布。反应物弯曲激发略微增强反应活性,而拉伸激发更有效地激活反应。反应物的任何振动激发都不如等效的平动能量有效地促进反应。没有考虑产物零点能(ZPE)约束的激发函数与之前的 8 维量子力学(QM)结果对于基态和拉伸激发 O + CH4 反应非常吻合,而对于弯曲激发反应,应用于产物振动能之和的软 ZPE 约束与 QM 截面提供了更好的吻合度。所有的角分布都显示出后向散射的主导性,表明存在直接反弹机制,这与实验结果一致。标题反应对于所有初始态主要产生 OH/OD(v = 0)产物。HB 显著高估了 OH/OD(v = 1)的丰度,尤其是在能量阈值区域,而 1GB 提供了物理上正确的结果。CH3/CD3 振动分布显示了主要的基态(v = 0)、伞状激发(v2 = 1, 2)、面内弯曲激发(v4 = 1)和 v2 + v4 甲基产物态的丰度。平动能量或反应物振动激发都没有显著地转移到产物振动中。