Tunable topological Weyl semimetal from simple-cubic lattices with staggered fluxes
Abstract
Three-dimensional Weyl fermions are found to emerge from simple-cubic lattices with staggered fluxes. The mechanism is a gapping of the quadratic-band touching by time-reversal-symmetry-breaking hoppings. The system exhibits a rich phase diagram where the number of Weyl fermions and their topological charges are tunable via plaquette fluxes. The Weyl semimetal state is shown to be the intermediate phase between a nontopological semimetal and a quantum anomalous Hall insulator. The transitions between those phases can be understood through the evolution of the Weyl points as Berry-flux insertion processes. As the Weyl points move and split (or merge) through tuning of the plaquette fluxes, the Fermi arcs and surface states undergo significant manipulation. We also propose a possible scheme to realize the model in ultracold fermions in optical lattices with artificial gauge fields.
- Publication:
-
Physical Review A
- Pub Date:
- March 2012
- DOI:
- arXiv:
- arXiv:1112.5943
- Bibcode:
- 2012PhRvA..85c3640J
- Keywords:
-
- 03.75.Ss;
- 71.10.Fd;
- 05.30.Fk;
- 03.65.Vf;
- Degenerate Fermi gases;
- Lattice fermion models;
- Fermion systems and electron gas;
- Phases: geometric;
- dynamic or topological;
- Condensed Matter - Quantum Gases
- E-Print:
- Accepted by Phys. Rev. A