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Quantum spin Hall effect and topological phase transition in two-dimensional square transition-metal dichalcogenides

机译:二维方形过渡金属二卤化物中的量子自旋霍尔效应和拓扑相变

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摘要

Two-dimensional (2D) topological insulators (TIs) hold promise for applications in spintronics based on the fact that the propagation direction of an edge electronic state of a 2D TI is locked to its spin orientation. Here, using first-principles calculations, we predict a family of robust 2D TIs in monolayer square transition-metal dichalcogenides MX2(M=Mo,W;X=S,Se,Te), which show sizeable intrinsic nontrivial band gaps ranged from 24 to 187 meV, thus ensuring the quantum spin Hall (QSH) effect at room temperature. Different from the most known 2D TIs with comparable band gaps, these sizeable energy gaps arise from the strong spin-orbit interaction related to d electrons of the Mo/W atoms. A pair of topologically protected helical edge states emerges at the edge of these systems with a Dirac-type dispersion within the bulk band gap. The topologically nontrivial natures are confirmed by the nontrivial Z2-type topological invariant. More interestingly, with applied strain, a topological quantum phase transition between a QSH phase and a trivial insulating/metallic phase can be realized, and the corresponding topological phase diagram is well established. © 2015 American Physical Society.
机译:二维(2D)拓扑绝缘体(TI)基于2D TI边缘电子状态的传播方向被锁定在其自旋方向这一事实,有望在自旋电子学中得到应用。在这里,使用第一性原理计算,我们预测了单层方形过渡金属双金属二卤化物MX2(M = Mo,W; X = S,Se,Te)中的一系列稳健的2D TI,它们显示了24范围内的相当大的内在非平凡带隙至187 meV,从而确保了室温下的量子自旋霍尔(QSH)效应。与已知的具有可比带隙的2D TI不同,这些较大的能隙来自与Mo / W原子的d电子有关的强自旋轨道相互作用。在这些系统的边缘出现了一对拓扑受保护的螺旋边缘状态,并在本体带隙内形成了Dirac型色散。非平凡的Z2型拓扑不变性证实了非平凡的拓扑性质。更有趣的是,通过施加应变,可以实现QSH相与琐碎的绝缘/金属相之间的拓扑量子相变,并很好地建立了相应的拓扑相图。 ©2015美国物理学会。

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