Vortex-lattice formation and melting in a nonrotating Bose-Einstein condensate
Abstract
Numerical simulations of the interference of a three-way segmented nonrotating Bose-Einstein condensate reveal the production of a honeycomb vortex lattice containing significant numbers of vortices and antivortices. If confined within a trap, the lattice subsequently melts, exhibiting a rich assortment of vortex-antivortex interactions. In contrast with nonlinear vortex production mechanisms previously described for Bose-Einstein condensates, the process here is shown to be primarily one of linear superposition, with initial vortex locations approximately described by a linear theory of wave packet interference.
Keywords
Cite
@article{arxiv.0801.0383,
title = {Vortex-lattice formation and melting in a nonrotating Bose-Einstein condensate},
author = {Gary Ruben and David M. Paganin and Michael J. Morgan},
journal= {arXiv preprint arXiv:0801.0383},
year = {2009}
}
Comments
10 pages, 8 figures, REVTeX4, Added a section following the introduction and clarified the description of the numerical model. Added references