Vortices in rotating optical lattices: commensurability, hysteresis, and proximity to the Mott State
arXiv:0807.3609
Abstract
Quantized vortices stunningly illustrate the coherent nature of a superfluid Bose condensate of alkali atoms. Introducing an optical lattice depletes this coherence. Consequently, novel vortex physics may emerge in an experiment on a harmonically trapped gas in the presence of a rotating optical lattice. The most dramatic effects would occur in proximity to the Mott state, an interaction dominated insulator with a fixed integer number of particles per site. We model such a rotating gas, showing that the lattice-induced spatial profile of the superfluid density drives a gross rearrangement of vortices. For example, instead of the uniform vortex lattices commonly seen in experiments, we find parameters for which the vortices all sit at a fixed distance from the center of the trap, forming a ring. Similarly, they can coalesce at the center, forming a giant vortex. We find that the properties of this system are hysteretic, even far from the Mott state. We explain this hysteresis in terms of vortex pinning, commensurability between vortex density and pinning site density, and energy barriers against changing the number of vortices. Finally, we model time-of-flight expansion, demonstrating the experimental observability of our predictions.
21 Pages, 6 Figures ; Higher resolution versions of Figs. 1,4,5 are available upon request
References in corpus (12)
- Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atoms
- Observation of persistent flow of a Bose-Einstein condensate in a toroidal trap
- Imaging the Mott Insulator Shells using Atomic Clock Shifts
- Observation of Vortex Pinning in Bose-Einstein Condensates
- Formation of spatial shell structures in the superfluid to Mott insulator transition
- Condensate fraction in a 2D Bose gas measured across the Mott-insulator transition
- Pinning of vortices in a Bose-Einstein condensate by an optical lattice
- Optical lattice quantum Hall effect
- Vortex configurations of bosons in an optical lattice
- Phase Boundary of the Boson Mott Insulator in a Rotating Optical Lattice
- Vortex lattices of bosons in deep rotating optical lattices
- Edge Transport in 2D Cold Atom Optical Lattices