English

Splitting of singly and doubly quantized composite vortices in two-component Bose-Einstein condensates

Quantum Gases 2019-10-11 v2

Abstract

We study numerically the dynamical instabilities and splitting of singly and doubly quantized composite vortices in two-component Bose-Einstein condensates harmonically confined to quasi two dimensions. In this system, the vortices become pointlike composite defects that can be classified in terms of an integer pair (κ1,κ2)(\kappa_1,\kappa_2) of phase winding numbers. Our simulations based on zero-temperature mean-field theory reveal several vortex splitting behaviors that stem from the multicomponent nature of the system and do not have direct counterparts in single-component condensates. By calculating the Bogoliubov excitations of stationary axisymmetric composite vortices, we find nonreal excitation frequencies (dynamical instabilities) for the singly quantized (1,1)(1,1) and (1,1)(1,-1) vortices and for all variants of doubly quantized vortices, which we define by the condition maxj=1,2κj=2\max_{j=1,2}|\kappa_j|=2. While the short-time predictions of the linear Bogoliubov analysis are confirmed by direct time integration of the Gross-Pitaevskii equations of motion, the time integration also reveals intricate long-time decay behavior not captured by the linearized dynamics. First, the (1,±1)(1,\pm 1) vortex is found to be unstable against splitting into a (1,0)(1,0) vortex and a (0,±1)(0,\pm 1) vortex. Second, the (2,1)(2,1) vortex exhibits a two-step decay process in which its initial splitting into a (2,0)(2,0) vortex and a (0,1)(0,1) vortex is followed by the off-axis splitting of the (2,0)(2,0) vortex into two (1,0)(1,0) vortices. Third, the (2,2)(2,-2) vortex is observed to split into a (1,1)(-1,1) vortex, three (1,0)(1,0) vortices, and three (0,1)(0,-1) vortices. Each of these splitting processes is the dominant decay mechanism of the respective stationary composite vortex for a wide range of intercomponent interaction strengths and relative populations of the two condensate components and should be amenable to experimental detection.

Keywords

Cite

@article{arxiv.1808.08223,
  title  = {Splitting of singly and doubly quantized composite vortices in two-component Bose-Einstein condensates},
  author = {Pekko Kuopanportti and Soumik Bandyopadhyay and Arko Roy and D. Angom},
  journal= {arXiv preprint arXiv:1808.08223},
  year   = {2019}
}

Comments

17 pages, 20 color figures; v2 is identical in content to the published article

R2 v1 2026-06-23T03:43:09.798Z