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Band structure and topological properties of graphene in a superlattice spin exchange field

机译:超晶格自旋交换场中石墨烯的能带结构和拓扑性质

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摘要

We analyze the energy spectrum of graphene in the presence of spin-orbit coupling and a one-dimensional periodically modulated Zeeman field, focusing on the stability and location of Dirac points it may support. It is found that the Dirac points at the K and K' points are generically moved to other locations in the Brillouin zone, but that they remain present when the Zeeman field (Δ)(x) integrates to zero within a unit cell. A large variety of locations for the Dirac points is shown to be possible: when (Δ) || (z) they are shifted from their original locations along the direction perpendicular to the superlattice axis, while realizations of (Δ)(x) that rotate periodically move the Dirac points to locations that can reflect the orbit of the rotating electron spin as it moves through a unit cell. When a uniform Zeeman field is applied in addition to a periodic (Δ) || z integrating to zero, the system can be brought into a metallic, Dirac semimetal, or insulating state, depending on the direction of the uniform field. The latter is shown to be an anomalous quantum Hall insulator.
机译:我们分析了自旋轨道耦合和一维周期性调制塞曼场存在下石墨烯的能谱,重点研究了其可能支持的狄拉克点的稳定性和位置。发现在K和K'点的Dirac点通常被移动到布里渊区中的其他位置,但是当Zeeman场(Δ)(x)在单位单元中积分为零时,它们仍然存在。显示了狄拉克点的多种位置是可能的:(Δ)|| (z)它们沿着垂直于超晶格轴的方向从其原始位置偏移,而周期性旋转的(Δ)(x)的实现将狄拉克点移动到可以反映旋转的电子自旋运动的位置通过晶胞。当除了周期(Δ)||之外还施加均匀的Zeeman场时z积分为零时,可以根据均匀场的方向使系统处于金属,狄拉克半金属或绝缘状态。后者显示为异常量子霍尔绝缘体。

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