Atom Loss Resonances in a Bose-Einstein Condensate
Abstract
Atom loss resonances in ultracold trapped atoms have been observed at scattering lengths near atom-dimer resonances, at which Efimov trimers cross the atom-dimer threshold, and near two-dimer resonances, at which universal tetramers cross the dimer-dimer threshold. We propose a new mechanism for these loss resonances in a Bose-Einstein condensate of atoms. As the scattering length is ramped to the large final value at which the atom loss rate is measured, the time-dependent scattering length generates a small condensate of shallow dimers coherently from the atom condensate. The coexisting atom and dimer condensates can be described by a low-energy effective field theory with universal coefficients that are determined by matching exact results from few-body physics. The classical field equations for the atom and dimer condensates predict narrow enhancements in the atom loss rate near atom-dimer resonances and near two-dimer resonances due to inelastic dimer collisions.
Cite
@article{arxiv.1302.5925,
title = {Atom Loss Resonances in a Bose-Einstein Condensate},
author = {Christian Langmack and D. Hudson Smith and Eric Braaten},
journal= {arXiv preprint arXiv:1302.5925},
year = {2015}
}
Comments
5 pages, 1 figure