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Anisotropy induced localization of pseudo-relativistic spin states in graphene double quantum wire structures

机译:石墨烯双量子线结构中各向异性诱导的伪相对论自旋态的局域化

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摘要

We study the single-particle properties of Dirac Fermions confined to a double quantum wire system based on graphene. We map out the spatial regions where electrons in a given subband display the largest occupation probability induced by spatial anisotropic effects associated to the interaction strength between the graphene wires and the substrate. Here, the graphene-substrate interaction is considered as an ad hoc parameter which destroys the zero-gap observed in the relativistic Dirac cone characteristic of graphene electronic energy dispersions. Furthermore, the results indicate that the character of quasi-extended spin states, viewed by multisubband probability density function, is highly sensitive to spatial asymmetries and to the graphene-substrate interaction strength.
机译:我们研究了限于基于石墨烯的双量子线系统中的狄拉克费米子的单粒子性质。我们绘制出给定子带中的电子显示出最大占领概率的空间区域,这些概率是由与石墨烯线和基板之间的相互作用强度相关的空间各向异性效应引起的。在这里,石墨烯与底物的相互作用被认为是一个自组织参数,破坏了石墨烯电子能量分散体的相对论狄拉克锥特性中观察到的零间隙。此外,结果表明,通过多子带概率密度函数观察,准扩展自旋态的特征对空间不对称性和石墨烯-基底相互作用强度高度敏感。

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