Critical behavior of a chiral superfluid in a bipartite square lattice
arXiv:1708.07550 · doi:10.1088/1367-2630/aa9fcb
Abstract
We study the critical behavior of Bose-Einstein condensation in the second band of a bipartite optical square lattice in a renormalization group framework at one-loop order. Within our field theoretical representation of the system, we approximate the system as a two-component Bose gas in three dimensions. We demonstrate that the system is in a different universality class than the previously studied condensation in a frustrated triangular lattice due to an additional Umklapp scattering term, which stabilizes the chiral superfluid order at low temperatures. We derive the renormalization group flow of the system and show that this order persists in the low energy limit. Furthermore, the renormalization flow suggests that the phase transition from the thermal phase to the chiral superfluid state is first order.
16 pages, 7 figures
References in corpus (11)
- Orbital superfluidity in the -band of a bipartite optical square lattice
- Quench-induced supercurrents in an annular Bose gas
- Universal space-time scaling symmetry in the dynamics of bosons across a quantum phase transition
- Staggered-Vortex Superfluid of Ultracold Bosons in an Optical Lattice
- The critical velocity in the BEC-BCS crossover
- Unconventional Bose-Einstein Condensations Beyond the "No-node" Theorem
- Prediction of quantum stripe ordering in optical lattices
- Collective Modes in a Unitary Fermi Gas across the Superfluid Phase Transition
- Incommensurate superfluidity of bosons in a double-well optical lattice
- Observing Chiral Superfluid Order by Matter-Wave Interference
- Multi-orbital bosons in bipartite optical lattices