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      Pair supersolid of the extended Bose-Hubbard model with atom-pair hopping on the triangular Lattice

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          Abstract

          We systematically study an extended Bose-Hubbard model with atom hopping and atom-pair hopping in the presence of a three-body constraint on the triangular lattice. By means of large-scale Quantum Monte Carlo simulations, the ground-state phase diagram are studied. We find a continuous transition between the atomic superfluid phase and the pair superfluid when the ratio of the atomic hopping and the atom-pair hopping is adapted. We then focus on the interplay among the atom-pair hopping, the on-site repulsion and the nearest-neighbor repulsion. With on-site repulsion present, we observe first order transitions between the Mott Insulators and pair superfluid driven by the pair hopping. With the nearest-neighbor repulsion turning on, three typical solid phases with 2/3, 1 and 4/3-filling emerge at small atom-pair hopping region. A stable pair supersolid phase is found at small on-site repulsion. This is due to the three-body constraint and the pair hopping, which essentially make the model a quasi hardcore boson system. Thus the pair supersolid state emerges basing on the order-by-disorder mechanism, by which hardcore bosons avoid classical frustration on the triangular lattice. The transition between the pair supersolid and the pair superfluid is first order, except for the particle-hole symmetric point. We compare the results with those obtained by means of mean-field analysis.

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          Most cited references17

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          Antiferromagnetism. The Triangular Ising Net

          G. Wannier (1950)
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            Path-integral computation of superfluid densities

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              Supersolid hardcore bosons on the triangular lattice

              We determine the phase diagram of hardcore bosons on a triangular lattice with nearest neighbor repulsion, paying special attention to the stability of the supersolid phase. Similar to the same model on a square lattice we find that for densities \(\rho 2/3\) a supersolid phase is unstable and the transition between a commensurate solid and the superfluid is of first order. At intermediate fillings \(1/3 < \rho < 2/3\) we find an extended supersolid phase even at half filling \(\rho=1/2\).
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                Author and article information

                Journal
                31 August 2012
                Article
                10.1103/PhysRevB.88.174515
                1208.6506
                ca5835fd-df6b-466d-82b9-c4b92b2267cf

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                Phys. Rev. B 88, 174515 (2013)
                6 pages, 7 figures
                cond-mat.quant-gas cond-mat.stat-mech

                Condensed matter,Quantum gases & Cold atoms
                Condensed matter, Quantum gases & Cold atoms

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