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Accurate Calculations of Rate Constants for the Forward and Reverse H2O + CO - HCOOH Reactions

机译:正向和反向H2O + CO - HCOOH反应的速率常数的准确计算

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The forward and reverse H2O + CO $ HCOOH reactions were investigated using high-level methodologies in order to provide accurate thermodynamic and kinetic data between 200 and 4000 K. Geometries of reactants, transition state (TS), and product were determined with the Coupled Cluster Theory including single and double excitations (CCSD) along with the cc-pVTZ basis set, whereas associated vibrational frequencies, zero-point energies, and thermal corrections were scaled to consider anharmonicity effects. Besides, the description of electronic energies was improved by means of core-valence correlation and iterative triple-excitation contributions together with a complete basis set extrapolation (E_(CBS),Δ) in order to achieve accurate values of enthalpies, Gibbs energies, and rate constants. Such rate constants were estimated at the highpressure limit by variational TS treatments combined with different quantum tunneling approaches. Finally, modified Arrhenius’ equations were fitted between 700 and 4000 K from our most reliable results.
机译:使用高级方法学研究了前进和反向H2O + CO $ HCOOH反应,以便在200至4000 K之间提供精确的热力学和动力学数据。反应物的几何形状,过渡态(TS),并用耦合群集确定产物理论包括单个激发和双重激发(CCSD)以及CC-PVTZ基集,而相关的振动频率,零点能和热校正缩放以考虑非谐波效应。此外,通过核心价相关性和迭代三重兴趣贡献以及完整的基集外推(E_(CBS),δ)来改进电子能的描述,以实现焓,Gibbs Energies和Gibbs Energies和Gibbs Energies和gibbs Energies和费率常数。通过变异TS处理与不同的量子隧道方法相结合,在高压极限下估计了这种速率常数。最后,从我们最可靠的结果中,修改后的Arrhenius方程安装在700至4000 K之间。

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