首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Predictive Beyond-Mean-Field Rate Equations for Multisite Lattice-Gas Models of Catalytic Surface Reactions: CO Oxidation on Pd(100)
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Predictive Beyond-Mean-Field Rate Equations for Multisite Lattice-Gas Models of Catalytic Surface Reactions: CO Oxidation on Pd(100)

机译:催化表面反应的多位点格子气体模型的预测平均场外速率方程:Pd(100)上的CO氧化

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Tailored multisite lattice-gas (msLG) models are developed for CO oxidation on Pd(100) at low-pressures. These models include multiple adsorption site types and superlattice adlayer ordering due to short-range exclusion for highly mobile reactant adspecies. However, they are simplified to neglect longer-range weaker adspecies interactions, so that the key energetic parameters are the CO desorption barrier and the reaction barrier. We discuss existing density functional theory results for these energies and present additional analysis for CO adsorption. After also including an appropriate nontrivial specification of the dynamics of adsorption onto mixed reactant adlayers, we develop rate equations for the reaction kinetics. Our formulation goes beyond traditional mean-field (MF) Langmuirian treatments by accounting for multiple adsorption sites and for the strong spatial correlations associated with superlattice ordering. Specifically, we utilize factorization approximations based on appropriate site motifs, and also Fade resummation of exact low-coverage expansions for sticking coefficients. Our beyond-MF rate equations are successful in accurately predicting key aspects of reactive steady-state behavior, and thus expand the utility of rate equation formulations in surface chemistry. This is confirmed by comparison with precise kinetic Monte Carlo simulation results. Specifically, we not only assess bistability and criticality observed for CO oxidation but also find more complex multistability associated with symmetry-breaking transitions in high-coverage CO adlayers.
机译:针对在低压下Pd(100)上的CO氧化开发了量身定制的多位点阵气体(msLG)模型。这些模型包括多种吸附位点类型和超晶格吸附层排序,这是由于短距离排斥对高度可移动的反应物种类造成的。但是,它们被简化为忽略了较弱范围内的较弱物种之间的相互作用,因此关键的高能参数是CO解吸屏障和反应屏障。我们讨论了这些能量的现有密度泛函理论结果,并提出了对CO吸附的其他分析。在还包括对混合反应物吸附层的吸附动力学的适当非平凡规范之后,我们开发了反应动力学的速率方程。通过考虑多个吸附位点以及与超晶格有序相关的强空间相关性,我们的公式超越了传统的平均场(MF)Langmuirian处理。具体来说,我们利用基于适当位置图案的分解近似,以及对粘贴系数的精确的低覆盖率展开进行淡化恢复。我们的超越MF速率方程可以成功准确地预测反应性稳态行为的关键方面,从而扩展了速率方程公式在表面化学中的用途。通过与精确的动力学蒙特卡洛模拟结果进行比较,可以证实这一点。具体而言,我们不仅评估了观察到的CO氧化的双稳性和临界性,而且还发现了与高覆盖率CO吸附剂中对称破坏跃迁相关的更复杂的多稳定性。

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