Scaling properties of cavity-enhanced atom cooling
Abstract
We extend an earlier semiclassical model to describe the dissipative motion of N atoms coupled to M modes inside a coherently driven high-finesse cavity. The description includes momentum diffusion via spontaneous emission and cavity decay. Simple analytical formulas for the steady-state temperature and the cooling time for a single atom are derived and show surprisingly good agreement with direct stochastic simulations of the semiclassical equations for N atoms with properly scaled parameters. A thorough comparison with standard free-space Doppler cooling is performed and yields a lower temperature and a cooling time enhancement by a factor of M times the square of the ratio of the atom-field coupling constant to the cavity decay rate. Finally it is shown that laser cooling with negligible spontaneous emission should indeed be possible, especially for relatively light particles in a strongly coupled field configuration.
Cite
@article{arxiv.quant-ph/0103141,
title = {Scaling properties of cavity-enhanced atom cooling},
author = {Peter Horak and Helmut Ritsch},
journal= {arXiv preprint arXiv:quant-ph/0103141},
year = {2009}
}
Comments
7 pages, 5 figures