English

Resonant Processes in a Frozen Gas

Disordered Systems and Neural Networks 2009-10-31 v2 Atomic Physics

Abstract

We present a theory of resonant processes in a frozen gas of atoms interacting via dipole-dipole potentials that vary as r3r^{-3}, where rr is the interatomic separation. We supply an exact result for a single atom in a given state interacting resonantly with a random gas of atoms in a different state. The time development of the transition process is calculated both on- and off-resonance, and the linewidth with respect to detuning is obtained as a function of time tt. We introduce a random spin Hamiltonian to model a dense system of resonators and show how it reduces to the previous model in the limit of a sparse system. We derive approximate equations for the average effective spin, and we use them to model the behavior seen in the experiments of Anderson et al. and Lowell et al. The approach to equilibrium is found to be proportional to exp(γeqt\exp (-\sqrt{\gamma_{eq}t}), where the constant γeq\gamma _{eq} is explicitly related to the system's parameters.

Keywords

Cite

@article{arxiv.cond-mat/9812313,
  title  = {Resonant Processes in a Frozen Gas},
  author = {J. S. Frasier and V. Celli and T. Blum},
  journal= {arXiv preprint arXiv:cond-mat/9812313},
  year   = {2009}
}

Comments

30 pages, 6 figures