Quantum critical behavior and trap-size scaling of trapped bosons in a one-dimensional optical lattice
Massimo Campostrini, Ettore Vicari

TL;DR
This paper investigates the quantum critical behavior and trap-size scaling of one-dimensional trapped bosons in optical lattices, revealing modulated scaling laws and multiscaling phenomena near Mott transitions and in superfluid phases.
Contribution
It introduces the trap-size scaling framework with a new exponent theta and analyzes the effects of confining potentials on quantum criticality in the 1D Bose-Hubbard model.
Findings
Analytical trap-size dependence at low-density Mott transition.
Modulated trap-size scaling with periodic functions near n=1 Mott transition.
Multiscaling behaviors observed in the superfluid phase.
Abstract
We study the quantum (zero-temperature) critical behaviors of confined particle systems described by the one-dimensional (1D) Bose-Hubbard model in the presence of a confining potential, at the Mott insulator to superfluid transitions, and within the gapless superfluid phase. Specifically, we consider the hard-core limit of the model, which allows us to study the effects of the confining potential by exact and very accurate numerical results. We analyze the quantum critical behaviors in the large trap-size limit within the framework of the trap-size scaling (TSS) theory, which introduces a new trap exponent theta to describe the dependence on the trap size. This study is relevant for experiments of confined quasi 1D cold atom systems in optical lattices. At the low-density Mott transition TSS can be shown analytically within the spinless fermion representation of the hard-core limit.…
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