Competing order in two-band Bose-Hubbard chains with extended-range interactions
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hdl:2117/406539
Document typeArticle
Defense date2024-03
PublisherAmerican Physical Society (APS)
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Abstract
Motivated by the recent progress in realizing and controlling extended Bose-Hubbard systems using excitonic or atomic devices, the present Letter theoretically investigates the case of a two-band Bose-Hubbard chain with nearest-neighbor interactions. Specifically, this study concentrates on the scenario where, due to the interactions, one band supports a density-wave phase, i.e., a correlated insulating phase with spontaneous breaking of translational symmetry in the lattice, while the other band supports superfluid behavior. Using the density matrix renormalization group method, we show that supersolid order can emerge from such a combination, that is, an elusive quantum state that combines crystalline order with long-range phase coherence. Depending on the f illing of the bands and the interband interaction strength, the supersolid phase competes with phase-separation, superfluid order, or Mott insulating density-wave order. As a possible setup to observe supersolidity, we propose the combination of a lower band supporting density-wave order and a thermally excited band that supports superfluidity due to weaker lattice confinement.
CitationWatanabe, Y. [et al.]. Competing order in two-band Bose-Hubbard chains with extended-range interactions. "Physical review. B", Març 2024, vol. 109, núm. 10, article L100507.
ISSN2469-9950
Publisher versionhttps://journals.aps.org/prb/abstract/10.1103/PhysRevB.109.L100507
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