Fractional-filling loophole insulator domains for ultracold bosons in optical superlattices
Academic Article
Publication Date:
2004
abstract:
The zero-temperature phase diagram of a Bose-Einstein condensate confined in realistic one-dimensional
l-periodic optical superlattices is investigated. The system of interacting bosons is modeled in terms of a
Bose-Hubbard Hamiltonian whose site-dependent local potentials and hopping amplitudes reflect the periodicity
of the lattice partition in l-site cells. Relying on the exact mapping between the hardcore limit of the
boson Hamiltonian and the model of spinless noninteracting fermions, incompressible insulator domains are
shown to exist for rational fillings that are predicted to be compressible in the atomic limit. The corresponding
boundaries, qualitatively described in a multiple-site mean-field approach, are shown to exhibit an unusual
loophole shape. A more quantitative description of the loophole domain boundaries at half filling for the special
case l=2 is supplied in terms of analytic strong-coupling expansions and quantum Monte Carlo simulations.
Iris type:
01.01 Articolo in rivista
List of contributors:
Buonsante, Pierfrancesco; Vezzani, Alessandro
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