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Ab initio and semiempirical studies of the adsorption and dissociation of water on pure, defective, and doped MgO (001) surfaces

机译:在纯,有缺陷和掺杂的MgO(001)表面上水的吸附和解离的从头算和半经验研究

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Ab initio and semiempirical calculations of large cluster models have been performed in order to study water adsorption and dissociation on pure, defective (vacancies) and doped (Li, Na, K, Ca, Fe) MgO (001) surfaces. The geometries of the adsorbed and dissociated molecules have been optimized preparatory to analysis of binding energies, stretching frequencies, charge transfers, preferential sites of interaction, and bond distances. We have used Mulliken, natural bond order, and electrostatic-derived atomic and overlap populations to analyze charge distributions in the clusters. We have also investigated transition structures, activation energies, energy gaps, HOMO, density of states, SCF orbital energies as well as the acid-base properties of our cluster model. Numerical results are compared, where possible, with experiment, interpreted in the framework of various analytical models, and correlated with site coordination numbers, corner and edge site preferential locations, and direction of charge transfer. A thorough charge analysis indicates substantial charge redistribution in the magnesium oxide crystal as a result of water adsorption and dissociation in pure, defective, and doped MgO crystals. The introduction of heavier impurities and vacancies could produce substantial changes in the physical and chemical properties of the catalyst and increase the binding and dissociation energies. Some of the largest changes originate from the introduction of vacancies. Two and three-dimensional potential energy surfaces are used to investigate activation energies of hydroxylation on the MgO surface. Stretching frequencies are correlated with magnesium and oxygen coordination numbers. (C) 1998 American Institute of Physics. [References: 80]
机译:为了研究纯,有缺陷(空位)和掺杂(Li,Na,K,Ca,Fe)MgO(001)表面上的水吸附和解离,已进行了大型簇模型的从头算和半经验计算。已优化吸附和解离分子的几何形状,以准备分析结合能,拉伸频率,电荷转移,相互作用的优先位和键距。我们使用了Mulliken,自然键序以及静电衍生的原子和重叠种群来分析簇中的电荷分布。我们还研究了过渡结构,活化能,能隙,HOMO,状态密度,SCF轨道能以及我们簇模型的酸碱性质。在可能的情况下,将数值结果与实验进行比较,并在各种分析模型的框架中进行解释,并将其与位点配位数,拐角和边缘位点优先位置以及电荷转移的方向相关联。彻底的电荷分析表明,纯水,有缺陷的和掺杂的MgO晶体中的水吸附和解离的结果是,氧化镁晶体中大量的电荷重新分布。较重的杂质和空位的引入可能会使催化剂的物理和化学性质发生重大变化,并增加键合和离解能。一些最大的变化源于职位空缺的引入。二维和三维势能表面用于研究MgO表面羟基化的活化能。拉伸频率与镁和氧的配位数相关。 (C)1998美国物理研究所。 [参考:80]

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