凝聚态物理
塞曼效应
物理
之字形的
量子霍尔效应
石墨烯
量子反常霍尔效应
量子自旋霍尔效应
自旋(空气动力学)
联轴节(管道)
T对称
自旋轨道相互作用
Chern类
量子力学
拓扑(电路)
磁场
材料科学
超导电性
几何学
数学
冶金
热力学
组合数学
作者
Petra Högl,Tobias Frank,Klaus Zollner,Denis Kochan,Martin Gmitra,Jaroslav Fabian
标识
DOI:10.1103/physrevlett.124.136403
摘要
We investigate an effective model of proximity modified graphene (or symmetrylike materials) with broken time-reversal symmetry. We predict the appearance of quantum anomalous Hall phases by computing bulk band gap and Chern numbers for benchmark combinations of system parameters. Allowing for staggered exchange field enables quantum anomalous Hall effect in flat graphene with Chern number C=1. We explicitly show edge states in zigzag and armchair nanoribbons and explore their localization behavior. Remarkably, the combination of staggered intrinsic spin-orbit and uniform exchange coupling gives topologically protected (unlike in time-reversal systems) pseudohelical states, whose spin is opposite in opposite zigzag edges. Rotating the magnetization from out of plane to in plane makes the system trivial, allowing us to control topological phase transitions. We also propose, using density functional theory, a material platform-graphene on Ising antiferromagnet MnPSe_{3}-to realize staggered exchange (pseudospin Zeeman) coupling.
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