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首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - Strong Quantum Spin Hall Effect and Topological Phase Transition in Two-Dimensional Materials with Dirac Cones
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APS -APS March Meeting 2017 - Event - Strong Quantum Spin Hall Effect and Topological Phase Transition in Two-Dimensional Materials with Dirac Cones

机译:APS -APS 2017年3月会议-活动-具有Dirac锥的二维材料中的强量子自旋霍耳效应和拓扑相变

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摘要

Spin-orbit coupling (SOC) can open a band gap in the 2D Dirac semi-metals for the application of the quantum spin hall effect (QSH), i.e., the two-dimensional (2D) topological insulators (TIs). The edge current of 2D TIs is topologically protected from backscattering, and thus hold great potential for applications in spintronics and quantum information. To find strong QSH states, the way of combining the effects of SOC and fundamental symmetries has drawn much more attention. Simultaneously, inspired by the development of graphene, seeking new 2D materials with Dirac cones as hosts of possible 2D TIs becomes more fashionable. Via the first-principles calculations with maximally localized Wannier functions, here, we propose a general way to produce 2D TIs with strong QSH states and demonstrate some non-trivial 2D quantum spin hall insulators by calculating the Z2 invariants and Berry curvature. Furthermore, a topological quantum phase transition between a non-trivial QSH phase and a trivial insulating/metallic phase can be realized by strain, and also, the SOC gap can be enhanced by strain. Thus our theoretical analysis can help searching large band gap 2D TIs.
机译:自旋轨道耦合(SOC)可以在2D Dirac半金属中打开带隙,以应用量子自旋霍耳效应(QSH),即二维(2D)拓扑绝缘体(TI)。二维TI的边缘电流在拓扑上得到了防止反向散射的保护,因此在自旋电子学和量子信息中具有广阔的应用前景。为了找到强的QSH状态,将SOC的影响与基本对称性相结合的方法引起了更多关注。同时,受石墨烯发展的启发,寻找具有狄拉克锥的新型2D材料作为可能的2D TI的宿主变得更加时尚。通过使用最大局部Wannier函数的第一性原理计算,在这里,我们提出了一种生产具有强QSH态的2D TI的通用方法,并通过计算Z2不变性和Berry曲率来演示一些非平凡的2D量子自旋霍尔绝缘体。此外,可以通过应变实现在非平凡的QSH相与平凡的绝缘/金属相之间的拓扑量子相变,并且可以通过应变来增大SOC间隙。因此,我们的理论分析可以帮助搜索较大的带隙2D TI。

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