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Two-dimensional Topological Crystalline Insulator Phase in Sb/Bi Planar Honeycomb with Tunable Dirac Gap

机译:具有可调Dirac间隙的Sb / Bi平面蜂窝中的二维拓扑晶体绝缘体相

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摘要

We predict planar Sb/Bi honeycomb to harbor a two-dimensional (2D) topological crystalline insulator (TCI) phase based on first-principles computations. Although buckled Sb and Bi honeycombs support 2D topological insulator (TI) phases, their structure becomes planar under tensile strain. The planar Sb/Bi honeycomb structure restores the mirror symmetry, and is shown to exhibit non-zero mirror Chern numbers, indicating that the system can host topologically protected edge states. Our computations show that the electronic spectrum of a planar Sb/Bi nanoribbon with armchair or zigzag edges contains two Dirac cones within the band gap and an even number of edge bands crossing the Fermi level. Lattice constant of the planar Sb honeycomb is found to nearly match that of hexagonal-BN. The Sb nanoribbon on hexagonal-BN exhibits gapped edge states, which we show to be tunable by an out-of-the-plane electric field, providing controllable gating of edge state important for device applications.
机译:我们基于第一性原理计算预测平面Sb / Bi蜂窝具有二维(2D)拓扑晶体绝缘体(TCI)相。尽管弯曲的Sb和Bi蜂窝结构支持2D拓扑绝缘体(TI)相,但它们的结构在拉伸应变下变为平面。平面的Sb / Bi蜂窝结构恢复了镜像对称性,并且显示出非零的镜像Chern数,表明该系统可以承载受拓扑保护的边缘状态。我们的计算表明,具有扶手椅或锯齿形边缘的平面Sb / Bi纳米带的电子光谱在带隙内包含两个狄拉克锥,并且偶数个边缘带穿过费米能级。发现平面Sb蜂窝的晶格常数几乎与六角形BN的晶格常数匹配。六角形BN上的Sb纳米带显示出空缺的边缘状态,我们证明可以通过平面外电场对其进行调节,从而提供了可控的对设备应用至关重要的边缘状态的门控。

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