Feshbach molecule production in fermionic atomic gases
arXiv:0812.4474 · doi:10.1103/PhysRevA.80.023626
Abstract
This paper examines the problem of molecule production in an atomic fermionic gas close to an s-wave Feshbach resonance by means of a magnetic field sweep through the resonance. The density of molecules at the end of the process is derived for narrow resonance and slow sweep.
4 pages
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Cited by in corpus (9)
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- Exact results for models of multichannel quantum nonadiabatic transitions
- Nonadiabatic transitions in exactly solvable quantum mechanical multichannel model: role of level curvature and counterintuitive behavior
- Semiclassical Spectrum of Small Bose-Hubbard Chains: A Normal Form Approach
- Parametric tuning of quantum phase transitions in ultracold reactions
- Exact transition probabilities in the three-state Landau-Zener-Coulomb model
- Many-body dynamics of p-wave Feshbach molecule production: a mean-field approach