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Effects of metal-support interactions on the electronic structures of metal atoms adsorbed on the perfect and defective MgO(100) surfaces

机译:金属-载体相互作用对完美和有缺陷的MgO(100)表面上吸附的金属原子的电子结构的影响

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The electronic structures of Ni. Pd. Pt, Cu, and Zn atoms adsorbed on the perfect MgO(100) surface and on a surface oxygen vacancy have been studied at the DFT/B3LYP level of theory using both the bare cluster and embedded cluster models. Ni, Pd, Pt, and Cu atoms can form stable adsorption complexes on the regular 0 site of the perfect MgO(100) surface with the binding energies of 19.0 25.2, 46.7 and 17.3 kcal/mol. respectively. despite very little electron transfer between the surface and the metal atoms. On the other hand, adsorptions of Ni. Pd. Pt. and Cu atoms show strong interaction with an oxygen vacancy on the MgO(100) surface by transferring a significant number of electron charges from the vacancy to the adsorbed metal atoms and thus forming ionic bonds with the vacancy site. These interactions on the vacancy site for Ni. Pd, Pt. and Cu atoms increase the binding energies by 25.8, 59.7, 85.2, and 19.1 kcal/mol, respectively, compared to those on the perfect surface. Zri atom interacts very weakly with the perfect surface as well as the surface oxygen vacancy. We observed that the interaction increases from Ni to Pt in the same group and decreases from Ni to Zn in the same transition metal period in both perfect and vacancy systems. These relationships correlate well with the degrees of electron transfer from the surface to the adsorbed metal atom. The chanaes in the ionization potentials of the surface also correlate with the adsorption energies or degrees of electron transfers. Madelung potential is found to have significant effects on the electronic properties of metal atom adsorptions on the MgO(100) surface as well as on an oxygen vacancy, though it is more so for the latter. Furthermore, the Madelung potential facilitates electron transfer from the surface to the adsorbed metal atoms but not in the other direction. (c) 2006 Elsevier B.V. All rights reserved.
机译:镍的电子结构。钯在DFT / B3LYP理论水平上,使用裸簇和嵌入式簇模型研究了吸附在理想MgO(100)表面和表面氧空位上的Pt,Cu和Zn原子。 Ni,Pd,Pt和Cu原子可以在完美MgO(100)表面的规则0位上形成稳定的吸附复合物,其结合能为19.0 25.2、46.7和17.3 kcal / mol。分别。尽管表面和金属原子之间几乎没有电子转移。另一方面,镍的吸附。钯铂Cu和Cu原子通过将大量电子电荷从空位转移到吸附的金属原子上,从而与MgO(100)表面的氧空位发生强烈相互作用,从而与空位形成离子键。这些相互作用在Ni的空缺站点上。钯,铂与理想表面上的那些相比,Cu和Cu原子的结合能分别增加了25.8、59.7、85.2和19.1 kcal / mol。 Zri原子与理想表面以及表面氧空位的相互作用非常弱。我们观察到,在完全和空位体系中,在相同的过渡金属周期中,同一组中镍与铂的相互作用增加,而镍与锌的相互作用则减少。这些关系与电子从表面转移到吸附的金属原子的程度密切相关。表面的电离势中的通道也与吸附能或电子转移程度相关。发现马德隆电势对MgO(100)表面以及氧空位上的金属原子吸附的电子性能具有显着影响,尽管后者的影响更大。此外,马德隆势能促进电子从表面转移到吸附的金属原子上,而不是在另一个方向上转移。 (c)2006 Elsevier B.V.保留所有权利。

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