English

Stable Quantum Vortices in Lee-Huang-Yang Dipolar Superfluids

Quantum Gases 2026-02-16 v3

Abstract

The nucleation and dynamics of vortices in the quasi-two-dimensional rotating dipolar Bose-Einstein condensate are explored by taking into account the Lee-Huang-Yang (LHY) correction to the mean-field (MF) theory. Assuming approximate cancellation of the MF interactions, we focus on the formation of a pure LHY superfluid. The effect of rotational frequency Ω\Omega is investigated numerically by determining the corresponding number of stable vortices in the superfluid, together with the respective energy per particle EE and chemical potential μ\mu . The LHY superfluid provides a deep minimum of EE and μ\mu , indicating that it is a remarkably robust state of quantum matter. By fixing the LHY interaction strength, an exact single-vortex critical frequency is found, along with the respective chemical potential. A notable feature, observed when creating the LHY superfluid with fewer than five vortices, which is understood as being due to the superfluid's nonlinearity and trapping aspect ratio, is the large frequency ranges admitting the production of two and four vortices, as compared to the small frequency ranges to obtain one and three vortices.

Keywords

Cite

@article{arxiv.2511.11540,
  title  = {Stable Quantum Vortices in Lee-Huang-Yang Dipolar Superfluids},
  author = {S. Sabari and R. Radha and Lauro Tomio and B. A. Malomed},
  journal= {arXiv preprint arXiv:2511.11540},
  year   = {2026}
}

Comments

To Appear in Physical Review A with 14 pages and 11 figures