Three-dimensional gap solitons in Bose-Einstein condensates supported by one-dimensional optical lattices
Abstract
We study fundamental and compound gap solitons (GSs) of matter waves in one-dimensional (1D) optical lattices (OLs) in a three-dimensional (3D) weak-radial-confinement regime, which corresponds to realistic experimental conditions in Bose-Einstein condensates (BECs). In this regime GSs exhibit nontrivial radial structures. Associated with each 3D linear spectral band exists a family of fundamental gap solitons that share a similar transverse structure with the Bloch waves of the corresponding linear band. GSs with embedded vorticity may exist \emph{inside} bands corresponding to other values of . Stable GSs, both fundamental and compound ones (including vortex solitons), are those which originate from the bands with lowest axial and radial quantum numbers. These findings suggest a scenario for the experimental generation of robust GSs in 3D settings.
Cite
@article{arxiv.1010.5271,
title = {Three-dimensional gap solitons in Bose-Einstein condensates supported by one-dimensional optical lattices},
author = {A. Muñoz Mateo and V. Delgado and Boris A. Malomed},
journal= {arXiv preprint arXiv:1010.5271},
year = {2019}
}
Comments
5 pages, 5 figures; v2: matches published version