English

Self-trapping of a binary Bose-Einstein condensate induced by interspecies interaction

Quantum Gases 2015-05-27 v1

Abstract

The problem of self-trapping of a Bose-Einstein condensate (BEC) and a binary BEC in an optical lattice (OL) and double well (DW) is studied using the mean-field Gross-Pitaevskii equation. For both DW and OL, permanent self-trapping occurs in a window of the repulsive nonlinearity gg of the GP equation: gc1<g<gc2g_{c1}<g<g_{c2}. In case of OL, the critical nonlinearities gc1g_{c1} and gc2g_{c2} correspond to a window of chemical potentials μc1<μ<μc2\mu_{c1}<\mu<\mu_{c2} defining the band gap(s) of the periodic OL. The permanent self-trapped BEC in an OL usually represents a breathing oscillation of a stable stationary gap soliton. The permanent self-trapped BEC in a DW, on the other hand, is a dynamically stabilized state without any stationary counterpart. For a binary BEC with intraspecies nonlinearities outside this window of nonlinearity, a permanent self trapping can be induced by tuning the interspecies interaction such that the effective nonlinearities of the components fall in the above window.

Keywords

Cite

@article{arxiv.1102.1669,
  title  = {Self-trapping of a binary Bose-Einstein condensate induced by interspecies interaction},
  author = {S. K. Adhikari},
  journal= {arXiv preprint arXiv:1102.1669},
  year   = {2015}
}
R2 v1 2026-06-21T17:23:26.688Z