Dynamics of vortex quadrupoles in nonrotating trapped Bose-Einstein condensate
arXiv:1609.07071 · doi:10.1038/srep29066
Abstract
Dynamics of vortex clusters is essential for understanding diverse superfluid phenomena. In this paper, we examine the dynamics of vortex quadrupoles in a trapped two-dimensional (2D) Bose-Einstein condensate. We find that the movement of these vortex-clusters fall into three distinct regimes which are fully described by the radial positions of the vortices in a 2D isotropic harmonic trap, or by the major radius (minor radius) of the elliptical equipotential lines decided by the vortex positions in a 2D anisotropic harmonic trap. In the "recombination" and "exchange" regimes the quadrupole structure maintains, while the vortices annihilate each other permanently in the "annihilation" regime. We find that the mechanism of the charge flipping in the "exchange" regime and the disappearance of the quadrupole structure in the "annihilation" regime are both through an intermediate state where two vortex dipoles connected through a soliton ring. We give the parameter ranges for these three regimes in coordinate space for a specific initial configuration and phase diagram of the vortex positions with respect to the Thomas-Fermi radius of the condensate. We show that the results are also applicable to systems with quantum fluctuations for the short-time evolution.
References in corpus (11)
- Quantum fluids of light
- Tuning the scattering length with an optically induced Feshbach resonance
- Emergence of turbulence in an oscillating Bose-Einstein condensate
- Introduction to quantum turbulence
- Staggered-Vortex Superfluid of Ultracold Bosons in an Optical Lattice
- Guiding-center dynamics of vortex dipoles in Bose-Einstein condensates
- A vortex dipole in a trapped two-dimensional Bose-Einstein condensate
- Stability and dynamics of vortex clusters in nonrotated Bose-Einstein condensates
- Size and dynamics of vortex dipoles in dilute Bose-Einstein condensates
- Dynamical excitations in the collision of 2D Bose-Einstein condensates
- Vortex interactions in the collision of Bose-Einstein condensates