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Direct versus hydrogen-assisted CO dissociation over stepped Ni and Ni3Fe surfaces: a computational investigation

机译:在阶梯状Ni和Ni3Fe表面上直接与氢辅助CO解离的计算研究

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The adsorption and dissociation of CO over stepped Ni and Ni3Fe surfaces were systematically studied using density functional theory slab calculations. Both (211)-like surface structure terminations (NiNi step and NiFe step, denoted as Ni3Fe(211)-AA and Ni3Fe(211)-AB) are considered for Ni3Fe. Direct scission of the C-O bond in CO is identified as the least likely one among the three proposed dissociation pathways and CO dissociation via a CHO intermediate appears to be most feasible at low CO coverage on pure and alloyed Ni(211) surfaces. The priority of H-assisted CO dissociation might originate from the more activated C-O bond in COH and CHO. Compared to Ni(211), the Ni3Fe(211)-AB surface could facilitate CO activation especially for the most possible CHO intermediate mechanism, whose rate-limiting step is found to be altered. The d-band center theory and Mulliken charge analysis are also employed to explain the activity difference between Ni3Fe(211)-AB and Ni3Fe(211)-AA. The significant structural sensitivity of CO dissociation highlights the importance of Fe locating in the step edge and the high reactivity of Ni3Fe(211)-AB is largely ascribed to the synergistic effect between Ni and Fe at the step edge.
机译:利用密度泛函理论平板计算系统研究了阶梯状Ni和Ni3Fe表面上CO的吸附和解离。对于Ni3Fe,考虑了两个(211)状表面结构终止(NiNi台阶和NiFe台阶,分别表示为Ni3Fe(211)-AA和Ni3Fe(211)-AB)。在C中的C-O键的直接断裂被认为是三种提议的解离途径中最不可能的一种,通过CHO中间体进行的CO解离似乎在纯净和合金化Ni(211)表面的低CO覆盖率下最可行。 H辅助的CO解离的优先级可能来自于COH和CHO中更活化的C-O键。与Ni(211)相比,Ni3Fe(211)-AB表面可以促进CO活化,特别是对于最可能的CHO中间机理而言,发现其限速步骤已改变。 d波段中心理论和Mulliken电荷分析还用于解释Ni3Fe(211)-AB和Ni3Fe(211)-AA之间的活度差异。 CO解离的显着结构敏感性突出了Fe位于台阶边缘的重要性,并且Ni3Fe(211)-AB的高反应性很大程度上归因于Ni和Fe在台阶边缘的协同作用。

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