English

Collapse of spin-orbit coupled Bose-Einstein condensates

Quantum Gases 2015-04-14 v1

Abstract

A finite-size quasi two-dimensional Bose-Einstein condensate collapses if the attraction between atoms is sufficiently strong. Here we present a theory of collapse for condensates with the interatomic attraction and spin-orbit coupling. We consider two realizations of spin-orbit coupling: the axial Rashba coupling and balanced, effectively one-dimensional, Rashba-Dresselhaus one. In both cases spin-dependent "anomalous" velocity, proportional to the spin-orbit coupling strength, plays a crucial role. For the Rashba coupling, this velocity forms a centrifugal component in the density flux opposite to that arising due to the attraction between particles and prevents the collapse at a sufficiently strong coupling. For the balanced Rashba-Dresselhaus coupling, the spin-dependent velocity can spatially split the initial state in one dimension and form spin-projected wavepackets, reducing the total condensate density. Depending on the spin-orbit coupling strength, interatomic attraction, and the initial state, this splitting either prevents the collapse or modifies the collapse process. These results show that the collapse can be controlled by a spin-orbit coupling, thus, extending the domain of existence of condensates of attracting atoms.

Keywords

Cite

@article{arxiv.1504.02860,
  title  = {Collapse of spin-orbit coupled Bose-Einstein condensates},
  author = {Sh. Mardonov and E. Ya. Sherman and J. G. Muga and Hong-Wei Wang and Yue Ban and Xi Chen},
  journal= {arXiv preprint arXiv:1504.02860},
  year   = {2015}
}

Comments

8 pages, 7 figures

R2 v1 2026-06-22T09:14:30.016Z