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Quantum dynamics of polyatomic dissociative chemisorption on transition metal surfaces: mode specificity and bond selectivity

机译:过渡金属表面上多原子解离化学吸附的量子动力学:模式特异性和键选择性

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摘要

Dissociative chemisorption is the initial and often rate-limiting step in many heterogeneous processes. As a result, an in-depth understanding of the reaction dynamics of such processes is of great importance for the establishment of a predictive model of heterogeneous catalysis. Overwhelming experimental evidence has suggested that these processes have a non-statistical nature and excitations in various reactant modes have a significant impact on reactivity. A comprehensive characterization of the reaction dynamics requires a quantum mechanical treatment on a global potential energy surface. In this review, we summarize recent progress in constructing high-dimensional potential energy surfaces for polyatomic molecules interacting with transition metal surfaces based on the plane-wave density functional theory and in quantum dynamical studies of dissociative chemisorption on these potential energy surfaces. A special focus is placed on the mode specificity and bond selectivity in these gas-surface collisional processes, and their rationalization in terms of the recently proposed Sudden Vector Projection model.
机译:在许多异质过程中,解离性化学吸附是初始且通常是速率限制的步骤。因此,深入了解此类过程的反应动力学对于建立非均相催化预测模型非常重要。压倒性的实验证据表明,这些过程具有非统计性质,并且在各种反应物模式下的激发对反应性都有重大影响。反应动力学的全面表征需要在整体势能表面上进行量子力学处理。在这篇综述中,我们总结了基于平面波密度泛函理论以及在这些势能表面上解离化学吸附的量子动力学研究,为与过渡金属表面相互作用的多原子分子构建高维势能表面的最新进展。特别关注这些气体表面碰撞过程中的模式特异性和键选择性,以及根据最近提出的“突然矢量投影”模型对它们的合理化。

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