Vanishing of the quantum spin Hall phase in a semi-Dirac Kane Mele model
arXiv:2112.11737 · doi:10.1103/PhysRevB.105.235409
Abstract
We study the vanishing of the topological properties of a quantum spin Hall insulator induced by a deformation of the band structure that interpolates between the Dirac and the semi-Dirac limits of a tight-binding model on a honeycomb lattice. The above scenario is mimicked in a simple model, where there exists a differential hopping along one of the three neighbours (say, ) compared to the other two (say, ). For , the properties of the quantum spin Hall phase is described by the familiar Kane Mele model, while denotes a situation in which the spin resolved bands are continuously deformed. represents a special case which is called as the semi-Dirac limit. Here, the spectral gaps between the conduction and the valence bands vanish. A closer inspection of the properties of such a deformed system yields insights on a topological phase transition occurring at the semi-Dirac limit, which continues to behave as a band insulator for . We demonstrate the evolution of the topological phase in presence of the Rashba and intrinsic spin-orbit couplings via computing the electronic band structure, edge modes in a nanoribbon and the invariant. The latter aids in arriving at the phase diagram which conclusively shows vanishing of the topological phase in the semi-Dirac limit. Further we demonstrate in gradual narrowing down of the plateau in the spin Hall conductivity, which along with a phase diagram provide robust support on the vanishing of the invariant and hence the quantum spin Hall phase.
References in corpus (12)
- The electronic properties of graphene
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Time Reversal Polarization and a Z_2 Adiabatic Spin Pump
- Anisotropic behaviors of massless Dirac fermions in graphene under periodic potential
- Study of Intrinsic Spin Hall Effect and Orbital Hall Effect in 4d- and 5d- Transition Metals
- Merging of Dirac points in a two-dimensional crystal
- Temperature dependence of spin diffusion length and spin Hall angle in Au and Pt
- Zero modes of tight binding electrons on the honeycomb lattice
- Current-Induced Polarization and the Spin Hall Effect at Room Temperature
- Spin-Hall effect in a disordered 2D electron-system
- The insulator/Chern-insulator transition in the Haldane model
- Emergence of Dirac-like bands in the monolayer limit of epitaxial Ge films on Au(111)
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