English

Vortex stability in nearly two-dimensional Bose-Einstein condensates with attraction

Other Condensed Matter 2009-11-11 v1 Pattern Formation and Solitons

Abstract

We perform accurate investigation of stability of localized vortices in an effectively two-dimensional ("pancake-shaped") trapped BEC with negative scattering length. The analysis combines computation of the stability eigenvalues and direct simulations. The states with vorticity S=1 are stable in a third of their existence region, 0<N<(1/3)Nmax(S=1)0<N<(1/3)N_{\max}^{(S=1)}, where NN is the number of atoms, and Nmax(S=1)N_{\max}^{(S=1)} is the corresponding collapse threshold. Stable vortices easily self-trap from arbitrary initial configurations with embedded vorticity. In an adjacent interval, (1/3)Nmax(S=1)<N<(1/3)N_{\max }^{(S=1)}<N< 0.43Nmax(S=1)\allowbreak 0.43N_{\max}^{(S=1)}, the unstable vortex periodically splits in two fragments and recombines. At N>N> 0.43Nmax(S=1)\allowbreak 0.43N_{\max}^{(S=1)}, the fragments do not recombine, as each one collapses by itself. The results are compared with those in the full 3D Gross-Pitaevskii equation. In a moderately anisotropic 3D configuration, with the aspect ratio 10\sqrt{10}, the stability interval of the S=1 vortices occupies 40\approx 40% of their existence region, hence the 2D limit provides for a reasonable approximation in this case. For the isotropic 3D configuration, the stability interval expands to 65% of the existence domain. Overall, the vorticity heightens the actual collapse threshold by a factor of up to 2. All vortices with S2S\geq 2 are unstable.

Keywords

Cite

@article{arxiv.cond-mat/0603793,
  title  = {Vortex stability in nearly two-dimensional Bose-Einstein condensates with attraction},
  author = {Dumitru Mihalache and Dumitru Mazilu and Boris A. Malomed and Falk Lederer},
  journal= {arXiv preprint arXiv:cond-mat/0603793},
  year   = {2009}
}

Comments

21 pages, 8 figures, to appear in Physical Review A