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Mechanism of methanol synthesis on Cu(100) and Zn/Cu(100) surfaces: Comparative dipped adcluster model study

机译:甲醇在Cu(100)和Zn / Cu(100)表面上的合成机理:对比浸入式聚集体模型研究

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The mechanism of methanol synthesis from CO2 and H-2 on Cu(100) and Zn/Cu(100) surfaces was studied using the dipped adcluster model (DAM) combined with ab initio Hartree-Fock (HF) and second-order Moller-Plesset (MP2) calculations. On clean Cu(100) surface, our calculations show that five successive hydrogenations are involved in the hydrogenation of adsorbed CO2 to methanol, and the intermediates are formate, dioxomethylene, formaldehyde, and methoxy. The rate-limiting step is the hydrogenation of formate to formaldehyde, and the Cu-Cu site is responsible for the reaction on Cu(100). The roles of Zn on Zn/Cu(100) catalyst are to modify the rate-limiting step of the reaction: to lower the activation energies of this step and to stabilize the dioxomethylene intermediate at the Cu-Zn site. The present comparative results indicate that the Cu-Zn site is the active site, which cooperates with the Cu-Cu site to catalyze methanol synthesis on a Cu-based catalyst. Electron transfer from surface to adsorbates is the most important factor in affecting the reactivity of these surface catalysts. (C) 2000 John Wiley & Sons, Inc. [References: 45]
机译:使用浸渍的adcluster模型(DAM)结合从头算起的Hartree-Fock(HF)和二阶Moller-化合物,研究了在Cu(100)和Zn / Cu(100)表面上由CO2和H-2合成甲醇的机理。 Plesset(MP2)计算。在干净的Cu(100)表面上,我们的计算表明,五个连续的氢化过程涉及吸附的CO2加氢成甲醇,中间产物是甲酸酯,二氧亚甲基,甲醛和甲氧基。限速步骤是将甲酸酯氢化为甲醛,而Cu-Cu位点负责在Cu(100)上进行反应。 Zn在Zn / Cu(100)催化剂上的作用是修改反应的限速步骤:降低该步骤的活化能,并使二氧亚甲基中间体稳定在Cu-Zn位点。本比较结果表明,Cu-Zn位点是活性位点,其与Cu-Cu位点协同作用以在Cu基催化剂上催化甲醇合成。电子从表面到吸附物的转移是影响这些表面催化剂反应性的最重要因素。 (C)2000 John Wiley&Sons,Inc. [参考:45]

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