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Non-equilibrium dynamics of the Bose-Hubbard model: A projection operator approach

Abstract

We study the phase diagram and non-equilibrium dynamics, both subsequent to a sudden quench of the hopping amplitude JJ and during a ramp J(t)=Jt/τJ(t)=Jt/\tau with ramp time τ\tau, of the Bose-Hubbard model at zero temperature using a projection operator formalism which allows us to incorporate the effects of quantum fluctuations beyond mean-field approximations in the strong coupling regime. Our formalism yields a phase diagram which provides a near exact match with quantum Monte Carlo results in three dimensions. We also compute the residual energy QQ, the superfluid order parameter Δ(t)\Delta(t), the equal-time order parameter correlation function C(t)C(t), and the wavefunction overlap FF which yields the defect formation probability PP during non-equilibrium dynamics of the model. We find that QQ, FF, and PP do not exhibit the expected universal scaling. We explain this absence of universality and show that our results compare well with recent experiments.Comment: Replaced with the accepted version, added one figure. 4 pages, 4 figures, to appear in Phys. Rev. Let

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