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本征磁性拓扑绝缘体。

Intrinsic magnetic topological insulators.

作者信息

Wang Pinyuan, Ge Jun, Li Jiaheng, Liu Yanzhao, Xu Yong, Wang Jian

机构信息

International Center for Quantum Materials, School of Physics, Peking University, Beijing 100871, China.

State Key Laboratory of Low-Dimensional Quantum Physics, Department of Physics, Tsinghua University, Beijing 100084, China.

出版信息

Innovation (Camb). 2021 Mar 22;2(2):100098. doi: 10.1016/j.xinn.2021.100098. eCollection 2021 May 28.

Abstract

Introducing magnetism into topological insulators breaks time-reversal symmetry, and the magnetic exchange interaction can open a gap in the otherwise gapless topological surface states. This allows various novel topological quantum states to be generated, including the quantum anomalous Hall effect (QAHE) and axion insulator states. Magnetic doping and magnetic proximity are viewed as being useful means of exploring the interaction between topology and magnetism. However, the inhomogeneity of magnetic doping leads to complicated magnetic ordering and small exchange gaps, and consequently the observed QAHE appears only at ultralow temperatures. Therefore, intrinsic magnetic topological insulators are highly desired for increasing the QAHE working temperature and for investigating topological quantum phenomena further. The realization and characterization of such systems are essential for both fundamental physics and potential technical revolutions. This review summarizes recent research progress in intrinsic magnetic topological insulators, focusing mainly on the antiferromagnetic topological insulator MnBiTe and its family of materials.

摘要

将磁性引入拓扑绝缘体中会破坏时间反演对称性,并且磁交换相互作用可以在原本无隙的拓扑表面态中打开一个能隙。这使得能够产生各种新颖的拓扑量子态,包括量子反常霍尔效应(QAHE)和轴子绝缘体态。磁掺杂和磁近邻效应被视为探索拓扑与磁性之间相互作用的有用手段。然而,磁掺杂的不均匀性导致复杂的磁有序和小的交换能隙,因此观测到的量子反常霍尔效应仅在超低温下出现。因此,迫切需要本征磁性拓扑绝缘体来提高量子反常霍尔效应的工作温度并进一步研究拓扑量子现象。此类系统的实现与表征对于基础物理学和潜在的技术革命都至关重要。本综述总结了本征磁性拓扑绝缘体的近期研究进展,主要聚焦于反铁磁拓扑绝缘体MnBiTe及其材料家族。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a133/8454723/e1ce7c3332cc/fx1.jpg

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