Fluctuation-damping of isolated, oscillating Bose-Einstein condensates
Abstract
Experiments on the nonequilibrium dynamics of an isolated Bose-Einstein condensate (BEC) in a magnetic double-well trap exhibit a puzzling divergence: While some show dissipation-free Josephson oscillations, others find strong damping. Such damping in isolated BECs cannot be understood on the level of the coherent Gross-Pitaevskii dynamics. Using the Keldysh functional-integral formalism, we describe the time-dependent system dynamics by means of a multi-mode BEC coupled to fluctuations (single-particle excitations) beyond the Gross-Pitaevskii saddle point. We find that the Josephson oscillations excite an excess of fluctuations when the effective Josephson frequency, , is in resonance with the effective fluctuation energy, , where both, and , are strongly renormalized with respect to their noninteracting values. Evaluating and using the model parameters for the respective experiments describes quantitatively the presence or absence of damping.
Keywords
Cite
@article{arxiv.1806.00376,
title = {Fluctuation-damping of isolated, oscillating Bose-Einstein condensates},
author = {Tim Lappe and Anna Posazhennikova and Johann Kroha},
journal= {arXiv preprint arXiv:1806.00376},
year = {2018}
}
Comments
Phys Rev. A, published version, display of some figures improved, references corrected. 12 pages, 7 figures