Ultracold bosons in a synthetic periodic magnetic field: Mott phases and re-entrant superfluid-insulator transitions
arXiv:1005.4476 · doi:10.1103/PhysRevB.82.205126
Abstract
We study Mott phases and superfluid-insulator (SI) transitions of ultracold bosonic atoms in a two-dimensional square optical lattice at commensurate filling and in the presence of a synthetic periodic vector potential characterized by a strength and a period , where is an integer and is the lattice spacing. We show that the Schrödinger equation for the non-interacting bosons in the presence of such a periodic vector potential can be reduced to an one-dimensional Harper-like equation which yields energy bands. The lowest of these bands have either single or double minima whose position within the magnetic Brillouin zone can be tuned by varying for a given . Using these energies and a strong-coupling expansion technique, we compute the phase diagram of these bosons in the presence of a deep optical lattice. We chart out the and dependence of the momentum distribution of the bosons in the Mott phases near the SI transitions and demonstrate that the bosons exhibit several re-entrant field-induced SI transitions for any fixed period . We also predict that the superfluid density of the resultant superfluid state near such a SI transition has a periodicity () in real space for odd (even) and suggest experiments to test our theory.
8 pages, 11 figures, v1
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Cited by in corpus (8)
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- Conductivity of strongly correlated bosons in optical lattices in an Abelian synthetic magnetic field
- Bosons with incommensurate potential and spin-orbit coupling
- Momentum Resolved Optical Lattice Modulation Spectroscopy for Bose Hubbard Model
- Thermal transitions of the modulated superfluid for spin-orbit coupled correlated bosons in an optical lattice
- Study of unconventional superfluid phases and the phase dynamics in spin-orbit coupled bose system
- Manipulating Goldstone modes via the superradiant light in a bosonic lattice gas inside a cavity