Departamento de Química Física, Universidad de Extremadura, 06071 Badajoz, Spain.
J Chem Phys. 2013 Feb 28;138(8):084305. doi: 10.1063/1.4792719.
A full-dimensional analytical potential energy surface (PES) for the OH + NH3 → H2O + NH2 gas-phase reaction was developed based exclusively on high-level ab initio calculations. This reaction presents a very complicated shape with wells along the reaction path. Using a wide spectrum of properties of the reactive system (equilibrium geometries, vibrational frequencies, and relative energies of the stationary points, topology of the reaction path, and points on the reaction swath) as reference, the resulting analytical PES reproduces reasonably well the input ab initio information obtained at the coupled-cluster single double triple (CCSD(T)) = FULL/aug-cc-pVTZ//CCSD(T) = FC/cc-pVTZ single point level, which represents a severe test of the new surface. As a first application, on this analytical PES we perform an extensive kinetics study using variational transition-state theory with semiclassical transmission coefficients over a wide temperature range, 200-2000 K. The forward rate constants reproduce the experimental measurements, while the reverse ones are slightly underestimated. However, the detailed analysis of the experimental equilibrium constants (from which the reverse rate constants are obtained) permits us to conclude that the experimental reverse rate constants must be re-evaluated. Another severe test of the new surface is the analysis of the kinetic isotope effects (KIEs), which were not included in the fitting procedure. The KIEs reproduce the values obtained from ab initio calculations in the common temperature range, although unfortunately no experimental information is available for comparison.
我们基于高精度从头计算方法,为 OH + NH3 → H2O + NH2 气相反应,开发了一个全维分析势能面(PES)。该反应具有非常复杂的形状,在反应路径上有多个势能阱。我们利用反应体系的广泛性质(平衡几何形状、振动频率、各驻点的相对能量、反应路径的拓扑结构和反应通道上的各点)作为参考,所得到的分析PES 能够很好地再现高精度从头计算方法(CCSD(T) = FULL/aug-cc-pVTZ//CCSD(T) = FC/cc-pVTZ 单点水平)在输入信息中得到的结果,这是对新表面的严峻考验。作为初步应用,我们在这个分析 PES 上,利用变分过渡态理论和半经典传输系数,在很宽的温度范围内(200-2000 K)进行了广泛的动力学研究。正向速率常数可以重现实验测量值,而反向速率常数则略有低估。然而,对实验平衡常数(从中可以得到反向速率常数)的详细分析使我们能够得出结论,即必须重新评估实验的反向速率常数。新表面的另一个严峻考验是分析动力学同位素效应(KIEs),它们未包含在拟合过程中。KIEs 能够重现从共同温度范围内的从头计算中获得的值,尽管遗憾的是,没有实验信息可供比较。