Realizing non-Abelian gauge potentials in optical square lattices: Application to atomic Chern insulators
arXiv:1301.4959 · doi:10.1088/0953-4075/46/13/134010
Abstract
We describe a scheme to engineer non-Abelian gauge potentials on a square optical lattice using laser-induced transitions. We emphasize the case of two-electron atoms, where the electronic ground state g is laser coupled to a metastable state e within a state-dependent optical lattice. In this scheme, the alternating pattern of lattice sites hosting g and e states depict a checkerboard structure, allowing for laser-assisted tunneling along both spatial directions. In this configuration, the nuclear spin of the atoms can be viewed as a "flavor" quantum number undergoing non-Abelian tunneling along nearest-neighbor links. We show that this technique can be useful to simulate the equivalent of the Haldane quantum Hall model using cold atoms trapped in square optical lattices, offering an interesting route to realize Chern insulators. The emblematic Haldane model is particularly suited to investigate the physics of topological insulators, but requires, in its original form, complex hopping terms beyond nearest-neighboring sites. In general, this drawback inhibits a direct realization with cold atoms, using standard laser-induced tunneling techniques. We demonstrate that a simple mapping allows to express this model in terms of matrix hopping operators, that are defined on a standard square lattice. This mapping is investigated for two models that lead to anomalous quantum Hall phases. We discuss the practical implementation of such models, exploiting laser-induced tunneling methods applied to the checkerboard optical lattice.
12 pages, 6 figures. Revised and extended version accepted for publication in Journal of Physics B: Atomic, Molecular and Optical Physics
References in corpus (28)
- The electronic properties of graphene
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Topological Field Theory of Time-Reversal Invariant Insulators
- Fractional quantum Hall states at zero magnetic field
- Nonlocal edge state transport in the quantum spin Hall state
- Quantum Anomalous Hall Effect in HgMnTe Quantum Wells
- Tunable gauge potential for neutral and spinless particles in driven lattices
- Non-Abelian gauge fields and topological insulators in shaken optical lattices
- Engineering Time-Reversal Invariant Topological Insulators With Ultra-Cold Atoms
- Realistic Time-Reversal Invariant Topological Insulators With Neutral Atoms
- Realizing Fractional Chern Insulators with Dipolar Spins
- Non-Abelian optical lattices: Anomalous quantum Hall effect and Dirac Fermions
- Direct imaging of topological edge states in cold-atom systems
- Reaching Fractional Quantum Hall States with Optical Flux Lattices
- Wilson Fermions and Axion Electrodynamics in Optical Lattices
- Detecting Chiral Edge States in the Hofstadter Optical Lattice
- Staggered-Vortex Superfluid of Ultracold Bosons in an Optical Lattice
- Interferometric approach to measuring band topology in 2D optical lattices
- Topological Insulators and Metals in Atomic Optical Lattices
- Ultracold atomic gases in non-Abelian gauge potentials: The case of constant Wilson loop
- Ultracold atomic gas in non-Abelian "magnetic" fields: the quantum Hall effect supremacy
- Rydberg-Atom Quantum Simulation and Chern Number Characterization of a Topological Mott Insulator
- Time-Reversal-Invariant Hofstadter-Hubbard Model with Ultracold Fermions
- Direct measurement of topological invariants in optical lattices
- SU(3) Spin-Orbit Coupling in Systems of Ultracold Atoms
- Measuring topology in a laser-coupled honeycomb lattice: From Chern insulators to topological semi-metals
- Double transfer through Dirac points in a tunable honeycomb optical lattice
- Identifying topological edge states in 2D optical lattices using light scattering
Cited by in corpus (27)
- Light-induced gauge fields for ultracold atoms
- Ultracold Fermi Gases with Emergent SU(N) Symmetry
- Extracting the Chern number from the dynamics of a Fermi gas: Implementing a quantum Hall bar for cold atoms
- Phases of one-dimensional SU(N) cold atomic Fermi gases --from molecular Luttinger liquids to topological phases
- Topological Creutz Ladder in a Resonantly Shaken 1D Optical Lattice
- Topological bands with Chern number C=2 by dipolar exchange interactions
- Topological Bogoliubov excitations in inversion-symmetric systems of interacting bosons
- Tunable axial gauge fields in engineered Weyl semimetals: Semiclassical analysis and optical lattice implementations
- Double Weyl points and Fermi arcs of topological semimetals in non-Abelian gauge potentials
- 2D spin-orbit coupling for ultracold atoms in optical lattices
- Pairing Superfluidity in Spin-Orbit Coupled Ultracold Fermi Gases
- Competing Chiral Orders in the Topological Haldane-Hubbard Model of Spin-1/2 Fermions and Bosons
- Dimensional crossover and cold-atom realization of topological Mott insulators
- Simulation of non-Abelian lattice gauge fields with a single component gas
- Exploring topological double-Weyl semimetals with cold atoms in optical lattices
- Topological phase transitions driven by non-Abelian gauge potentials in optical square lattices
- Design of laser-coupled honeycomb optical lattices supporting Chern insulators
- Chiral Topological Orders in an Optical Raman Lattice
- Floquet engineering of optical nonlinearities: a quantum many-body approach
- Floquet-engineered nonlinearities and controllable pair-hopping processes: From optical Kerr cavities to correlated quantum matter
- Fractional Quantum Hall States of Dipolar Gases in Chern Bands
- A solenoidal synthetic field and the non-Abelian Aharonov-Bohm effects in neutral atoms
- Spin-Orbit Coupling and Topological States in Cold Fermi Gas
- Valley-dependent gauge fields for ultracold atoms in square optical superlattices
- Orbital Edelstein effect of electronic itinerant orbital motion at edges
- Efficient algorithm to compute the Berry conductivity
- Tensor network method for real-space topology in quasicrystal Chern mosaics