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首页> 外文期刊>Journal of physical chemistry letters >Effects of Lattice Motion on Dissociative Chemisorption: Toward a Rigorous Comparison of Theory with Molecular Beam Experiments
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Effects of Lattice Motion on Dissociative Chemisorption: Toward a Rigorous Comparison of Theory with Molecular Beam Experiments

机译:晶格运动对解离化学吸附的影响:理论与分子束实验的严格比较

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摘要

The dissociative chemisorption of small molecules such as methane and water on metal surfaces is a key step in many important catalyzed reactions. However, it has only very recently become possible to directly compare theory with molecular beam studies of these reactions. For most experimental conditions, such a comparison requires accurate methods for introducing the effects of lattice motion into quantum reactive scattering calculations. We examine these methods and their recent application to methane and water dissociative chemisorption. New results are presented for CO2 chemisorption and methane dissociation at step edges. The type of molecule-lattice coupling that leads to a strong variation in the dissociative sticking of methane with temperature is shown to occur for many polyatomic-metal systems. Improvements to these models are discussed. The ability to accurately compare theory with molecular beam experiments should lead to improved density functionals and consequently more accurate thermal rate constants for these important reactions.
机译:小分子(例如甲烷和水)在金属表面上的解离化学吸附是许多重要催化反应中的关键步骤。然而,直到最近才可以将理论与这些反应的分子束研究直接进行比较。对于大多数实验条件,这样的比较需要将晶格运动的影响引入量子反应散射计算的精确方法。我们研究了这些方法及其在甲烷和水的离解化学吸附中的最新应用。提出了台阶边缘CO2化学吸附和甲烷解离的新结果。对于许多多原子-金属系统来说,导致甲烷的离解性粘附随温度发生强烈变化的分子-晶格偶合类型已显示出发生。讨论了对这些模型的改进。准确地将理论与分子束实验进行比较的能力应可改善密度泛函,从而使这些重要反应的热速率常数更准确。

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