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Vibrational properties of hydrogen atom adsorbed on Cu(111) and on Ir(111) surfaces

机译:吸附在Cu(111)和Ir(111)表面的氢原子的振动特性

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We investigate the quantum mechanical behavior, in particular, the vibrational properties, of H atoms adsorbed on metal surfaces. We carry out density functional theory-based calculations of the relevant potential energy curves (PECs) for the hydrogen on Cu(111) and Ir(111) systems and construct the adiabatic three-dimensional potential energy surfaces (PESs) based on the obtained PECs. The wave functions and the corresponding energies for the hydrogen motion on the PESs are calculated within the framework of the variation method. The results show that the H atom is adsorbed at the threehold hollow site of Cu(111) and it is strongly localized. On the other hand, on the Ir(111), the H atom is adsorbed at the top site and it exhibits delocalized features. Furthermore, our calculated energies for vibrationally excited hydrogen and deuterium adsorbed on Cu(111) and Ir(111) agree well with the corresponding recently observed high-resolution electron energy-loss spectroscopy loss peaks. (C) 2004 American Institute of Physics.
机译:我们研究了吸附在金属表面的H原子的量子力学行为,特别是振动特性。我们对Cu(111)和Ir(111)系统上氢的相关势能曲线(PECs)进行基于密度泛函理论的计算,并基于获得的PEC构造绝热三维势能面(PESs) 。在变分方法的框架内,计算了PES上氢运动的波函数和相应的能量。结果表明,H原子被吸附在Cu(111)的三点空心位点并且被强烈地局域化。另一方面,在Ir(111)上,H原子被吸附在顶部,并表现出离域特征。此外,我们计算得出的振动激发的氢和氘吸附在Cu(111)和Ir(111)上的能量与相应的最近观察到的高分辨率电子能量损失谱损耗峰一致。 (C)2004美国物理研究所。

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