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Controlling the spin of metal atoms adsorbed on oxide surfaces: Ni on regular and defective sites of the MgO(001) surface

机译:控制吸附在氧化物表面上的金属原子的自旋:Ni在MgO(001)表面的规则位置和缺陷位置上

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摘要

We have analyzed the relative energy of nonmagnetic and magnetic low-lying electronic states of Ni atoms adsorbed on regular and defective sites of the MgO(001) surface. To this end cluster and periodic surface models are used within density functional theory. For Ni atoms adsorbed on oxygen vacancies at low coverage, the interaction energy between the metal and the support is much larger than on regular sites. Strong bonding results in a diamagnetic adsorbed species and the energy required to reach the high-spin state increases. Moreover, a correlation appears between the low-spin to high-spin energy difference and the interaction energy hypothesizing that it is possible to prepare the surface to tune the high-spin to low-spin energy difference. Magnetic properties of adsorbed thin films obtained upon increasing coverage are more difficult to interpret. This is because the metallic bond is readily formed and dominates over the effect of the atoms directly bound to the vacancy.
机译:我们已经分析了吸附在MgO(001)表面规则和有缺陷的位置上的Ni原子的非磁性和磁性低电子态的相对能量。为此,在密度泛函理论中使用了簇和周期表面模型。对于以低覆盖率吸附在氧空位上的Ni原子,金属与载体之间的相互作用能比规则位点大得多。牢固的键合会产生抗磁性吸附物质,并且达到高旋转状态所需的能量会增加。而且,在从低旋转到高旋转的能量差与相互作用能之间存在相关性,这假设可以准备表面以调节从高旋转到低旋转的能量差。通过增加覆盖率获得的吸附薄膜的磁性能更难以解释。这是因为金属键容易形成并且在直接与空位键合的原子的作用上占主导地位。

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