English

Quantum unbinding near a zero temperature liquid-gas transition

Quantum Gases 2020-01-29 v3 Statistical Mechanics

Abstract

We discuss the quantum phase transition from a liquid to a gaseous ground state in a Bose fluid with increasing strength of the zero point motion. It is shown that in the zero pressure limit, the two different ground states are separated by a quantum tricritical point whose position is determined by a vanishing two-body scattering length. In the presence of a finite three-body scattering amplitude, the superfluid gas at this point exhibits sound modes whose velocity scales linearly with density while the compressibility diverges p1/3\sim p^{-1/3} in the limit of vanishing pressure pp. In the liquid regime of negative scattering lengths, it is shown that NN-body bound states exist up to arbitrary NN, consistent with a theorem by Seiringer. The asymptotic scaling a(N)N1/2a_{-}(N)\sim N^{-1/2} of the scattering lengths where they appear from the continuum is determined from a finite size scaling analysis in the vicinity of the quantum tricritical point. This also provides a qualitative understanding of numerical results for the quantum unbinding of small clusters.

Keywords

Cite

@article{arxiv.1906.01273,
  title  = {Quantum unbinding near a zero temperature liquid-gas transition},
  author = {Wilhelm Zwerger},
  journal= {arXiv preprint arXiv:1906.01273},
  year   = {2020}
}

Comments

Final version as published

R2 v1 2026-06-23T09:40:40.170Z