Transition from Band insulator to Bose-Einstein Condensate superfluid and Mott State of Cold Fermi Gases with Multiband Effects in Optical Lattices
Ryota Watanabe, Masatoshi Imada

TL;DR
This paper explores how multiband effects in optical lattice-loaded Fermi gases lead to complex phase transitions, including a transition from band insulator to BEC superfluid and the emergence of orbital ordered insulators.
Contribution
It introduces new models demonstrating unconventional insulator-superfluid transitions and orbital order, highlighting the role of multiband effects and interactions in cold Fermi gases.
Findings
Unconventional insulator-superfluid transition with large one-particle gap.
Reentrant transition with lowering temperature.
Discovery of orbital ordered insulator state.
Abstract
We study two models realized by two-component Fermi gases loaded in optical lattices. We clarify that multi-band effects inevitably caused by the optical lattices generate a rich structure, when the systems crossover from the region of weakly bound molecular bosons to the region of strongly bound atomic bosons. Here the crossover can be controlled by attractive fermion interaction. One of the present models is a case with attractive fermion interaction, where an insulator-superfluid transition takes place. The transition is characterized as the transition between a band insulator and a Bose-Einstein condensate (BEC) superfluid state. Differing from the conventional BCS superfluid transition, this transition shows unconventional properties. In contrast to the one particle excitation gap scaled by the superfluid order parameter in the conventional BCS transition, because of the multi-band…
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