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Dirac-Weyl semimetal phase in noncentrosymmetric transition metal monochalcogenides MoTe and WTe

机译:非中心体二元过渡金属Monochalcogerodes Mote和WTE中的Dirac-Weyl半阶段

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We investigated the topological properties of hexagonal transition metal monochalcogenides (TMMs) MoTe and WTe by combining first-principles calculations, the Wannier-based tight-binding method and the low energy k center dot p effective model. The topological properties are identified by calculating the node chirality, surface states and surface Fermi arcs. Our calculations revealed that both MoTe and WTe are nodal line semimetals in the absence of spin-orbit coupling (SOC). When considering the SOC, the nodal semimetal is transformed into a Dirac-Weyl semimetal, which hosts simultaneously Dirac fermions and Weyl fermions. Two Dirac nodes on the k(z) axis are protected by threefold rotation symmetry. Twelve pairs of Weyl nodes on the k(z) not equal 0 planes are related by C-3 rotation symmetry and lie below the Fermi level, which makes them accessible by conventional Angle-resolved photoemission spectroscopy (ARPES) measurement. The separation of Weyl points in reciprocal space, and the length of the surface Fermi arc, is of the order magnitude of 0.1 angstrom(-1), which makes them easy to observe experimentally. In addition, the Dirac-Weyl semimetal phase is robust against external strain. Our findings are important for studying the interaction between Dirac fermions and Weyl fermions in a single material and useful for realizing possible applications in future topological electronic devices.
机译:我们通过组合第一原理计算,若干基础紧密结合方法和低能量K中心点P有效模型来研究六边形过渡金属单色霉菌和WTE的拓扑特性。通过计算节点手性,表面状态和表面费米弧来识别拓扑性质。我们的计算表明,在没有自旋轨道耦合(SOC)的情况下,两种Mote和WTE都是节点线半定。在考虑SOC时,节点半型转变为DIRAC-Weyl半型,其同时举办DIRAC码头和赘徒。 K(Z)轴上的两个DIDAC节点由三倍旋转对称保护。 K(z)不等于0平面上的十二对韦尔节点由C-3旋转对称相关,并且位于费米水平以下,这使得它们可以通过传统的角度解析光曝光光谱(ARPES)测量来访问它们。往复式空间中的Weyl点的分离,以及表面费米弧的长度,是0.1埃(-1)的订单幅度,这使得它们易于通过实验观察。另外,Dirac-Weyl半阶段对外部应变具有鲁棒性。我们的发现对于研究单一材料中的Dirac码头和渭瓜饼米蒙斯之间的相互作用非常重要,并且可用于实现未来拓扑电子设备中可能的应用。

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