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Dirac node lines in two-dimensional Lieb lattices

机译:狄拉克节点行二维Lieb晶格

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摘要

As a new type of quantum matter, Dirac node line (DNL) semimetals are currently attracting widespread interest in condensed matter physics and materials science. The DNL, featured by a closed line consisting of linear band crossings in the momentum space, was mostly predicted in three-dimensional materials. Here, we propose a tight-binding (TB) model of p(z) + p(x),(y) or p(z) + s orbitals defined on the two-dimensional (2D) Lieb lattice for the 2D version of DNL semimetals. The DNL states in these models are caused by the inversion of the bands with different symmetries and thus robust against spin-orbit interaction. By means of first-principles calculations, we demonstrate two candidate materials: Be2C and BeH2 monolayers, which have Fermi circles centred at Gamma(0,0) and K(1/2,1/2) points, respectively. Their Fermi velocities are higher than that in graphene. The non-zero Z(2) topological invariant accompanied by the edge states is revealed in these materials. This work opens an avenue for the design of 2D DNL semimetals.
机译:作为一种新型的量子物质,狄拉克节点(黑暗)半金属目前吸引广泛的凝聚态物理的兴趣和材料科学。封闭的线组成的线性乐队口岸在动量空间,主要是预测三维材料。紧束缚模型(TB)的p (z) + p (x)或(y)p (z) + s轨道上定义二维的(2 d) Lieb晶格DNL的2 d版半金属。由乐队的反演不同的对称性,因此强大的反对旋轨道相互作用。采用基于计算,我们将演示两个候选人材料:Be2C BeH2单层膜,费米的圈子集中在γ(0,0)和K(1/2, 1/2)点,分别。速度是高于石墨烯。非零Z(2)拓扑不变的陪同显示在这些边缘国家材料。2 d DNL半金属的设计。

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