Coherent Quantum Engineering of Free-Space Laser Cooling
Abstract
We perform a quantitative analysis of the cooling dynamics of three-level atomic systems interacting with two distinct lasers. Employing sparse-matrix techniques, we find numerical solutions to the fully quantized master equation in steady state. Our method allows straightforward determination of laser-cooling temperatures without the ambiguity often accompanied by semiclassical calculations, and more quickly than non-sparse techniques. Our calculations allow us to develop an understanding of the regimes of cooling, as well as a qualitative picture of the mechanism, related to the phenomenon of electromagnetically induced transparency. Effects of the induced asymmetric Fano-type lineshapes affect the detunings required for optimum cooling, as well as the predicted minimum temperatures which can be lower than the Doppler limit for either transition.
Cite
@article{arxiv.physics/0610272,
title = {Coherent Quantum Engineering of Free-Space Laser Cooling},
author = {Josh W. Dunn and J. W. Thomsen and Chris H. Greene and Flavio C. Cruz},
journal= {arXiv preprint arXiv:physics/0610272},
year = {2009}
}
Comments
5 pages, 3 figures