arXiv · 2408.02093
Floquet engineering of topological phase transitions in quantum spin Hall $\alpha$-$T_{3}$ system
Abstract
Floquet engineering of topological phase transitions driven by a high-frequency time-periodic field is a promising approach to realizing new topological phases of matter distinct from static states. Here, we theoretically investigate Floquet engineering topological phase transitions in the quantum spin Hall $\alpha$-$T_{3}$ system driven by an off-resonant circularly polarized light. In addition to the quantum spin (anomalous) Hall insulator phase with multiple helical (chiral) edge states, spin-polarized topological metallic phases are observed, where the bulk topological band gap of one spin sub-band overlaps with the other gapless spin sub-band. Moreover, with a staggered potential, the topological invariants of the system depend on whether the middle band is occupied because of the breaking of symmetry with respect to the center of energy-momentum plane. Our work highlights the significance of Floquet engineering in realizing new topological phases in $\alpha$-$T_{3}$ lattices.
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Kok Wai Lee, Mateo Jalen Andrew Calderon, Xiang-Long Yu, Ching Hua Lee, Yee Sin Ang, Pei-Hao Fu. 2024-08-04. Floquet engineering of topological phase transitions in quantum spin Hall $\alpha$-$T_{3}$ system. https://doi.org/10.1103/physrevb.111.045406
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