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Hydrogen And Oxygen Adsorption On Zno Nanowires: A First-principles Study

机译:Zno纳米线上的氢和氧吸附:第一性原理研究

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We employ first-principles calculations to investigate the structural stability and electronic properties of zinc oxide (ZnO) nanowires adsorbed with different chemical functional groups. The nanowires with one hydrogen monolayer on the surfaces adsorbed with both O and Zn atoms maintain their bulklike geometries, whereas the surface relaxation is found to be significant for the bare and partially adsorbed nanowires. While a half monolayer coverage of hydrogen on an oxygen-adsorbed surface induces metallic behavior, the adsorption of a full monolayer removes the states from the band gap to render a system with a well-defined band gap, revising previous theoretical predictions of metallicity in the latter. On the other hand, when all surface atoms are saturated, either with hydrogen atoms only or with both OH and H groups, the semiconducting behavior is recovered. Our results open up the possibility of tailoring the electronic properties by controlling the surface adsorption sites.
机译:我们采用第一性原理计算来研究具有不同化学官能团的氧化锌(ZnO)纳米线的结构稳定性和电子性能。在表面同时吸附有O和Zn原子的表面上具有一个氢单层的纳米线保持了其类似体的几何形状,而对于裸露和部分吸附的纳米线而言,表面弛豫非常重要。虽然氢在氧气吸附表面上的半单分子层覆盖会引起金属行为,但完整单分子层的吸附会从带隙中去除状态,从而使系统具有明确的带隙,从而修改了先前对金属中金属度的理论预测。后者。另一方面,当所有表面原子都饱和时,要么仅被氢原子饱和,要么被OH和H均饱和,则恢复了半导体性能。我们的结果为通过控制表面吸附位点调整电子性能提供了可能性。

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