4.6 Article

Engineering quantum anomalous Hall phases with orbital and spin degrees of freedom

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PHYSICAL REVIEW B
卷 87, 期 20, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.87.205132

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资金

  1. HGF-YIG [VH-NG-513, VH-NG-409]
  2. DFG through Research Unit 912
  3. [HE3292/7-1]

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Combining tight-binding models and first-principles calculations, we investigate the quantum anomalous Hall (QAH) effect induced by intrinsic spin-orbit coupling (SOC) in buckled honeycomb lattice with sp orbitals in an external exchange field. Detailed analysis reveals that nontrivial topological properties can arise utilizing not only spin but also orbital degrees of freedom in the strong SOC limit, when the bands acquire nonzero Chern numbers upon undergoing the so-called orbital purification. As a prototype of a buckled honeycomb lattice with strong SOC we choose the Bi(111) bilayer, analyzing its topological properties in detail. In particular, we show the emergence of several QAH phases upon spin exchange of the Chern numbers as a function of SOC strength and magnitude of the exchange field. Interestingly, we observe that in one of such phases, namely, in the quantum spin Chern insulator phase, the quantized charge and spin Hall conductivities coexist. We consider the possibility of tuning the SOC strength in the Bi bilayer via alloying with isoelectronic Sb, and speculate that exotic properties could be expected in such an alloyed system owing to the competition of the topological properties of its constituents. Finally, we demonstrate that 3d dopants can be used to induce a sizable exchange field in the Bi(111) bilayer, resulting in nontrivial Chern insulator properties.

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