Spin-Orbit Coupling and Topological States in Cold Fermi Gas
arXiv:1801.05646 · doi:10.1103/PhysRevB.98.165139
Abstract
In this work we study the possible occurrence of topological insulators for 2D fermions of high spin. They can be realized in cold fermion systems with ground-state atomic spin , if the optical potential is properly designed, and spin-orbit coupling is relevant. The latter is shown to be induced by letting the fermions interact with a specially tuned arrangement of polarized laser beams. When the system is subject to a perpendicular magnetic field, time reversal symmetry is broken but the ensuing Hamiltonian is still endowed with a mirror symmetry. Topological insulators for fermions of higher spins are fundamentally distinct from those pertaining to spin . The underlying physics reveals a plethora of positive and negative mirror Chern numbers, respectively corresponding to chiral and anti-chiral edge states. Here, for simplicity, we concentrate on the case (which is suitable for Li or H atoms) but extension to higher spins (such as K whose ground-state spin is ), is straightforward.
24 pages, 16 eps figures
References in corpus (13)
- Spin-Injection Spectroscopy of a Spin-Orbit Coupled Fermi Gas
- Non-Abelian Topological Order in S-Wave Superfluids of Ultracold Fermionic Atoms
- Degenerate Quantum Gases with Spin-Orbit Coupling
- Non-Abelian gauge potentials for ultra-cold atoms with degenerate dark states
- Topology of crystalline insulators and superconductors
- Engineering Time-Reversal Invariant Topological Insulators With Ultra-Cold Atoms
- Realistic Time-Reversal Invariant Topological Insulators With Neutral Atoms
- Effect of Induced Spin-Orbit Coupling for Atoms via Laser Fields
- Hidden symmetry and quantum phases in spin-3/2 cold atomic systems
- Generalized Rashba spin-orbit coupling for cold atoms
- Spin-orbit coupling and Berry phase with ultracold atoms in 2D optical lattices
- Pairing states of spin-3/2 fermions: Symmetry-enforced topological gap functions
- Spin Orbit Coupling in Periodically Driven Optical Lattices