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Strain effect on electronic structures of graphene nanoribbons: A first-principles study

机译:应变对石墨烯纳米带电子结构的影响:第一性原理研究

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We report a first-principles study on the electronic structures of deformed graphene nanoribbons (GNRs). Our theoretical results show that the electronic properties of zigzag GNRs are not sensitive to uniaxial strain, while the energy gap modification of armchair GNRs (AGNRs) as a function of uniaxial strain displays a nonmonotonic relationship with a zigzag pattern. The subband spacings and spatial distributions of the AGNRs can be tuned by applying an external strain. Scanning tunneling microscopy dI/dV maps can be used to characterize the nature of the strain states, compressive or tensile, of AGNRs. In addition, we find that the nearest neighbor hopping integrals between pi-orbitals of carbon atoms are responsible for energy gap modification under uniaxial strain based on our tight binding approximation simulations. (C) 2008 American Institute of Physics.
机译:我们报告了变形石墨烯纳米带(GNRs)的电子结构的第一性原理研究。我们的理论结果表明,之字形GNRs的电子特性对单轴应变不敏感,而扶手椅式GNRs(AGNRs)的能隙变化作为单轴应变的函数与之字形呈非单调关系。 AGNR的子带间距和空间分布可以通过施加外部应变来调整。扫描隧道显微镜dI / dV图可用于表征AGNR的应变状态(压缩或拉伸)的性质。此外,基于紧密结合近似模拟,我们发现碳原子pi轨道之间最近的邻居跳跃积分负责单轴应变下的能隙修正。 (C)2008美国物理研究所。

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