Generalized lattice Wilson-Dirac fermions in (1+1) dimensions for atomic quantum simulation and topological phases
arXiv:1801.00439 · doi:10.1038/s41598-018-29143-w
Abstract
The Dirac fermion is an important fundamental particle appearing in high-energy physics and topological insulator physics. In particular, a Dirac fermion in a one-dimensional lattice system exhibits the essential properties of topological physics. However, the system has not been quantum simulated in experiments yet. Herein, we propose a one-dimensional generalized lattice Wilson-Dirac fermion model and study its topological phase structure. We show the experimental setups of an atomic quantum simulator for the model, in which two parallel optical lattices with the same tilt for trapping cold fermion atoms and a laser-assisted hopping scheme are used. Interestingly, we find that the model exhibits nontrivial topological phases characterized by gapless edge modes and a finite winding number in the broad regime of the parameter space. Some of the phase diagrams closely resemble those of the Haldane model. We also discuss topological charge pumping and a lattice Gross-Neveu model in the system of generalized Wilson-Dirac fermions.
14 pages, 7+1 figures, accepted for publication in Scientific Reports
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Cited by in corpus (14)
- Flat-band many-body localization and ergodicity breaking in the Creutz ladder
- Unruh effect for interacting particles with ultracold atoms
- Phase structure of the interacting Su-Schrieffer-Heeger model and the relationship with the Gross-Neveu model on lattice
- Topological and flat bands states induced by hybridized interactions in one-dimensional photonic lattices
- Renormalization group flows for Wilson-Hubbard matter and the topological Hamiltonian
- Lattice-fermionic Casimir effect and topological insulators
- Casimir effect for lattice fermions
- Competing Orders and Unconventional Criticality in the Su-Schrieffer-Heeger Model
- Fermionic fields in a four-dimensional Bonnor-Melvin-Lambda space-time
- Kondo effect with Wilson fermions
- Generating and detecting topological phases with higher Chern number
- Strongly Interacting Two-component Coupled Bose Gas in Optical Lattices
- Realizing highly entangled states in asymmetrically coupled three NV centers at room temperature
- Holographic entanglement renormalisation for fermionic quantum matter