4.6 Article

Strongly interacting two-component coupled Bose gas in optical lattices

Journal

PHYSICAL REVIEW A
Volume 104, Issue 5, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.104.053326

Keywords

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Funding

  1. National Science Foundation [PHY-1912068]
  2. Welch Foundation [C-1669]

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The study examines a two-component coupled Bose gas in a 1D optical lattice. The coupling of components leads to changes in spin phases and reveals remarkable spin correlations. The phase transition shifts from first to second order with the introduction of coupling, resulting in the emergence of two spin phases instead of one.
Two-component coupled Bose gas in a 1D optical lattice is examined. In addition to the postulated Mott insulator and superfluid phases, multiple bosonic components manifest spin degrees of freedom. Coupling of the components in the Bose gas leads to substantial changes in the previously observed spin phases, giving rise to a new effective spin Hamiltonian and unraveling remarkable spin correlations. The system in the absence of coupling exhibits ferromagnetic and nonferromagnetic spin phases for on-site intracomponent interaction stronger than intercomponent interaction. Upon introduction of coupling, the phase transition switches from first to second order. For comparable on-site inter-and intracomponent interactions, with coupling, instead of one, two spin phases emerge with a second-order phase transition. Exact diagonalization and variational Monte Carlo with stochastic minimization on the entangled-plaquette state bestow a unique and enhanced perspective on the system beyond the scope of a mean-field treatment.

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