English

Topology-induced phase transitions in quantum spin Hall lattices

Mesoscale and Nanoscale Physics 2011-02-17 v2 Quantum Gases

Abstract

Physical phenomena driven by topological properties, such as the quantum Hall effect, have the appealing feature to be robust with respect to external perturbations. Lately, a new class of materials has emerged manifesting their topological properties at room temperature and without the need of external magnetic fields. These topological insulators are band insulators with large spin-orbit interactions and exhibit the quantum spin-Hall (QSH) effect. Here we investigate the transition between QSH and normal insulating phases under topological deformations of a two-dimensional lattice. We demonstrate that the QSH phase present in the honeycomb lattice looses its robustness as the occupancy of extra lattice sites is allowed. Furthermore, we propose a method for verifying our predictions with fermionic cold atoms in optical lattices. In this context, the spin-orbit interaction is engineered via an appropriate synthetic gauge field.

Keywords

Cite

@article{arxiv.1007.2056,
  title  = {Topology-induced phase transitions in quantum spin Hall lattices},
  author = {D. Bercioux and N. Goldman and D. F. Urban},
  journal= {arXiv preprint arXiv:1007.2056},
  year   = {2011}
}