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Competing edge structures of Sb and Bi bilayers generated by trivial and nontrivial band topologies

机译:由微型和非虚拟带拓扑产生的SB和BI双层的竞争边缘结构

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摘要

One-dimensional (1D) edge states formed at the boundaries of 2D normal and topological insulators have shown intriguing quantum phases such as charge density wave and quantum spin Hall effect. Based on first-principles density-functional theory calculations including spin-orbit coupling (SOC), we show that the edge states of zigzag Sb(111) and Bi(111) nanoribbons drastically change the stability of their edge structures. For zigzag Sb(111) nanoribbon, the Peierls-distorted or reconstructed edge structure is stabilized by a band-gap opening. However, for zigzag Bi(111) nanoribbons, such insulating structures are destabilized due to the presence of topologically protected gapless edge states, resulting in the stabilization of a metallic, shear-distorted edge structure. We also show that the edge states of the Bi(111) nanoribbon exhibit a larger Rashba-type spin splitting at the boundary of Brillouin zone compared to those of the Sb(111) nanoribbon. Interestingly, the spin textures of edge states in the Peierls-distorted Sb edge structure and the shear-distorted Bi edge structure have all three spin components perpendicular and parallel to the edges due to their broken mirror-plane symmetry. The present findings demonstrate that the topologically trivial and nontrivial edge states play crucial roles in determining the edge structures of normal and topological insulators.
机译:在2D正常和拓扑绝缘体的边界处形成的一维(1D)边缘状态表明了诱导量子相,例如电荷密度波和量子旋转霍尔效应。基于第一原理的密度功能理论计算,包括旋转轨道耦合(SOC),我们表明Z字形SB(111)和BI(111)纳米的边缘状态大大改变了边缘结构的稳定性。对于Zigzag Sb(111)纳米臂,通过带间隙开口稳定Peierls扭曲或重建的边缘结构。然而,对于Zigzag Bi(111)纳米杆,这种绝缘结构由于存在拓扑保护的无形缘状态而使,导致金属,剪切失真边缘结构的稳定性。我们还表明,与Sb(111)纳米臂相比,BI(111)纳米纳米的边缘状态在布里渊区的边界处表现出较大的RASHBA型旋转分裂。有趣的是,边缘的状态在派尔斯失真锑边缘结构和剪切失真碧边缘结构自旋纹理具有所有三个旋转部件由于它们的破镜平面对称垂直和平行于边缘。本研究结果表明,拓扑般的琐碎和非长态边缘状态在确定正常和拓扑绝缘体的边缘结构时起着至关重要的作用。

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  • 来源
    《Physical review, B》 |2018年第7期|共7页
  • 作者单位

    Hanyang Univ Dept Phys Res Inst Nat Sci 222 Wangsimni Ro Seoul 04763 South Korea;

    Hanyang Univ Dept Phys Res Inst Nat Sci 222 Wangsimni Ro Seoul 04763 South Korea;

    Hanyang Univ Dept Phys Res Inst Nat Sci 222 Wangsimni Ro Seoul 04763 South Korea;

    Forschungszentrum Julich Peter Grunberg Inst D-52425 Julich Germany;

    Hanyang Univ Dept Phys Res Inst Nat Sci 222 Wangsimni Ro Seoul 04763 South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学;
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