Toroidal Confinement and Beyond: Vorticity-Defined Morphologies of Dipolar $^{164}$Dy Quantum Droplets
S. Sanjay, S. Saravana Veni, Boris A. Malomed

TL;DR
This paper explores the formation, stability, and dynamics of vortex-shaped quantum droplets in dipolar Bose-Einstein condensates within a toroidal trap, highlighting the stabilizing effects of dipole interactions and quantum corrections.
Contribution
It introduces stable multipole vortex quantum droplets with various topological charges and analyzes their stability and structural properties in a non-rotating dipolar BEC.
Findings
Stable multipole vortex droplets up to S=6 are formed.
Stability decreases as the topological charge increases.
Dipole-dipole interactions and LHY correction stabilize complex droplet states.
Abstract
We investigate the formation, stability, and dynamics of 3D ring-shaped and multipole vortical quantum droplets (QDs) in non-rotating dipolar Bose-Einstein condensates held in a toroidal trapping potential. The QD dynamics are investigated in the framework of the extended Gross-Pitaevskii equation, which includes long-range dipole-dipole interactions (DDI) and the beyond-mean-field Lee-Huang-Yang (LHY) term, revealing the emergence of self-bound states. Stable stationary solutions for multipole QDs with different values of the topological charge (vorticity ) are shaped as necklace-like modes, with the number of \textquotedblleft beads" (multipole's order) , up to . The stability area of the multipoles shrinks with the increase of . For higher values of the centrifugal effect associated with the phase winding destabilizes the annular density and drives the formation…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum, superfluid, helium dynamics · Advanced Physical and Chemical Molecular Interactions
