English

Optically Controlled Topological Phases in the Deformed $\alpha-T_{3}$ Lattice

Mesoscale and Nanoscale Physics 2025-12-23 v2

Abstract

Haldane's tight-binding model, which describes a Chern insulator in a two-dimensional hexagonal lattice, exhibits quantum Hall conductivity without an external magnetic field. Here, we explore an αT3\alpha -T_{3} lattice subjected to circularly polarized off-resonance light. This lattice, composed of two sublattices (A and B) and a central site (C) per unit cell, undergoes deformation by varying the hopping parameter γ1\gamma _{1} while keeping γ2\gamma _{2}= γ3\gamma _{3}= γ\gamma . Analytical expressions for quasi-energies in the first Brillouin zone reveal significant effects of symmetry breaking. Circularly polarized light lifts the degeneracy of Dirac points, shifting the cones from M. This deformation evolves with γ1\gamma _{1} , breaking symmetry at γ1=2γ\gamma _{1}=2\gamma , as observed in Berry curvature diagrams. In the standard case (γ1=γ\gamma _{1}=\gamma ), particle-hole and inversion symmetries are preserved for α=0\alpha =0 and % \alpha =1. The system transitions from a semi-metal to a Chern insulator, with band-specific Chern numbers: C2=1C_{2}=1, C1=0C_{1}=0, and C0=1C_{0}=-1 for % \alpha <1/\sqrt{2}, shifting to C2=2C_{2}=2, C1=0C_{1}=0, and C0=2C_{0}=-2 when % \alpha \geqslant 1/\sqrt{2}.For γ1>2γ\gamma _{1}>2\gamma , the system enters a trivial insulating phase. These transitions, confirmed via Wannier charge centers, are accompanied by a diminishing Hall conductivity. Our findings highlight tunable topological phases in αT3\alpha -T_{3} lattices, driven by light and structural deformation, with promising implications for quantum materials.

Keywords

Cite

@article{arxiv.2503.22146,
  title  = {Optically Controlled Topological Phases in the Deformed $\alpha-T_{3}$ Lattice},
  author = {Othmane Benhaida and El Hassan Saidi and L. B. Drissi},
  journal= {arXiv preprint arXiv:2503.22146},
  year   = {2025}
}