Strong-coupling RPA theory of a Bose gas near the superfluid--Mott-insulator transition: universal thermodynamics and two-body contact
Nicolas Dupuis, Moksh Bhateja, Adam Ran\c{c}on

TL;DR
This paper develops a strong-coupling RPA framework for the Bose-Hubbard model near the superfluid--Mott-insulator transition, revealing universal thermodynamic behavior and defining two-body contacts that govern high-momentum properties.
Contribution
It introduces a strong-coupling RPA approach that captures universal features of the transition and defines new two-body contact parameters for high-momentum behavior.
Findings
Universal form of pressure near the transition
Definition of a universal two-body contact $C_{univ}$
Agreement with lattice model predictions for high-momentum distribution
Abstract
We present a strong-coupling expansion of the Bose-Hubbard model based on a mean-field treatment of the hopping term, while onsite fluctuations are taken into account exactly. This random phase approximation (RPA) describes the universal features of the generic Mott-insulator--superfluid transition (induced by a density change) and the superfluid state near the phase transition. The critical quasi-particles at the quantum critical point have a quadratic dispersion with an effective mass and their mutual interaction is described by an effective -wave scattering length . The singular part of the pressure takes the same form as in a dilute Bose gas, provided we replace the boson mass and the scattering length in vacuum by and , and the density by the excess density of particles (or holes) with respect to the Mott insulator. We define a…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum, superfluid, helium dynamics · Atomic and Subatomic Physics Research
