arXiv · physics/0201021
Self-consistent model of ultracold atomic collisions and Feshbach resonances in tight harmonic traps
Abstract
We consider the problem of cold atomic collisions in tight traps, where the absolute scattering length may be larger than the trap size. As long as the size of the trap ground state is larger than a characteristic length of the van der Waals potential, the energy eigenvalues can be computed self-consistently from the scattering amplitude for untrapped atoms. By comparing with the exact numerical eigenvalues of the trapping plus interatomic potentials, we verify that our model gives accurate eigenvalues up to milliKelvin energies for single channel s-wave scattering of $^{23}$Na atoms in an isotropic harmonic trap, even when outside the Wigner threshold regime. Our model works also for multi-channel scattering, where the scattering length can be made large due to a magnetically tunable Feshbach resonance.
Explore related subjects
Keep this discovery
E. L. Bolda, E. Tiesinga, P. S. Julienne. 2002-01-10. Self-consistent model of ultracold atomic collisions and Feshbach resonances in tight harmonic traps. https://doi.org/10.1103/physreva.66.013403
Cite the original work for its findings. Save a collection to share your selection of sources.