论文标题

在超晶格中的工程轴绝缘子阶段,反转对称性破裂

Engineering axion insulator phase in superlattices with inversion symmetry breaking

论文作者

Islam, Rajibul, Mardanya, Sougata, Lau, Alexander, Cuono, Giuseppe, Chang, Tay-Rong, Singh, Bahadur, Canali, Carlo M., Dietl, Tomasz, Autieri, Carmine

论文摘要

从理论上讲,我们研究了沿(001)轴堆叠的三维HGTE/MNTE超晶格的磁性和拓扑之间的相互作用。我们的结果表明,相对于磁性构型,磁性拓扑阶段的演变。观察到抗铁磁序的轴突绝缘体相,其平面外néel矢量方向以下低于MNTE的临界厚度,这是所有磁性构型中的基态。将$ t $定义为时间交流对称性,该轴线绝缘体相位受磁性两倍旋转对称性$ C_2 {\ cdot} t $保护。随着我们增加磁性层的厚度,轴突绝缘体相会演变成琐碎的绝缘子。通过将néel矢量方向切换到$ ab $平面,该系统根据MNTE的厚度实现了不同的抗铁磁拓扑绝缘子。这些相具有无间隙的表面狄拉克锥从垂直于磁层的néel矢量方向的表面上的高对称点转移。在存在铁磁性的情况下,该系统分别实现了磁性Weyl半学和铁磁半学,分别用于平面外和面积磁化方向。在三维超晶格中存在铁磁性的情况下,我们观察到大型霍尔电导率。

We study theoretically the interplay between magnetism and topology in three-dimensional HgTe/MnTe superlattices stacked along the (001) axis. Our results show the evolution of the magnetic topological phases with respect to the magnetic configurations. An axion insulator phase is observed for the antiferromagnetic order with the out-of-plane Néel vector direction below a critical thickness of MnTe, which is the ground state amongst all magnetic configurations. Defining $T$ as the time-reversal symmetry, this axion insulator phase is protected by a magnetic two-fold rotational symmetry $C_2{\cdot}T$. The axion insulator phase evolves into a trivial insulator as we increase the thickness of the magnetic layers. By switching the Néel vector direction into the $ab$ plane, the system realizes different antiferromagnetic topological insulators depending on the thickness of MnTe. These phases feature gapless surface Dirac cones shifted away from high-symmetry points on surfaces perpendicular to the Néel vector direction of the magnetic layers. In the presence of ferromagnetism, the system realizes a magnetic Weyl semimetal and a ferromagnetic semimetal for out-of-plane and in-plane magnetization directions, respectively. We observe large anomalous Hall conductivity in the presence of ferromagnetism in the three-dimensional superlattice.

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