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Half-Magnetic Topological Insulator with Magnetization-Induced Dirac Gap at a Selected Surface

机译:半磁性拓扑绝缘体具有磁化引起的磁化诱导的Dirac间隙在选定的表面上

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Topological magnets are a new family of quantum materials providing great potential to realize emergent phenomena, such as the quantum anomalous Hall effect and the axion-insulator state. Here, we present our discovery that the stoichiometric ferromagnet MnBi 8 Te 13 with natural heterostructure MnBi 2 Te 4 / ( Bi 2 Te 3 ) 3 is an unprecedented “half-magnetic topological insulator,” with the magnetization existing at the MnBi 2 Te 4 surface but not at the opposite surface terminated by triple Bi 2 Te 3 layers. Our angle-resolved photoemission spectroscopy measurements unveil a massive Dirac gap at the MnBi 2 Te 4 surface and a gapless Dirac cone on the other side. Remarkably, the Dirac gap (about 28?meV) at the MnBi 2 Te 4 surface decreases monotonically with increasing temperature and closes right at the Curie temperature, thereby representing the first smoking-gun spectroscopic evidence of a magnetization-induced topological surface gap among all known magnetic topological materials. We further demonstrate theoretically that the half-magnetic topological insulator is desirable to realize the surface anomalous Hall effect, which serves as direct proof of the general concept of axion electrodynamics in condensed matter systems.
机译:拓扑磁铁是一种新的量子材料系列,提供了实现突出现象的巨大潜力,例如量子异常霍尔效应和轴心状态。在这里,我们发现我们的发现:具有天然异质结构MnBi 2 Te 4 /(Bi 2 Te 3)3的化学计量铁磁性MnBi 8 Te 13是一个前所未有的“半磁性拓扑绝缘体”,其在MnBi 2 Te 4处存在的磁化强化表面但不是由三重BI 2 TE 3层终止的相对表面。我们的角度分辨光学激发光谱测量测量在MNBI 2 TE 4表面和另一侧的无形云锥上揭示了大规模的Dirac间隙。值得注意的是,MnBi 2 TE 4的狄拉克间隙(约28μm)在居里温度下越来越低,在居里温度下较高,右侧闭合,从而表示磁化引起的拓扑表面间隙中的第一次吸烟枪光谱证据已知的磁性拓扑材料。从理论上我们进一步证明了半磁性拓扑绝缘体,以实现表面异常霍尔效应,其用作冷凝物系统中轴电动力学的一般概念的直接证明。

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