Ultracold quantum dynamics: spin-polarized K + K_2 collisions with three identical bosons or fermions
Abstract
We have developed a new potential energy surface for spin-polarized K(S) + K collisions and carried out quantum dynamical calculations of vibrational quenching at low and ultralow collision energies for both bosons K and K and fermions K. At collision energies above about 0.1 mK the quenching rates are well described by a classical Langevin model, but at lower energies a fully quantal treatment is essential. We find that for the low initial vibrational state considered here (), the ultracold quenching rates are {\it not} substantially suppressed for fermionic atoms. For both bosons and fermions, vibrational quenching is much faster than elastic scattering in the ultralow-temperature regime. This contrasts with the situation found experimentally for molecules formed via Feshbach resonances in very high vibrational states.
Keywords
Cite
@article{arxiv.cond-mat/0411158,
title = {Ultracold quantum dynamics: spin-polarized K + K_2 collisions with three identical bosons or fermions},
author = {G. Quemener and P. Honvault and J. -M. Launay and P. Soldan and D. E. Potter and J. M. Hutson},
journal= {arXiv preprint arXiv:cond-mat/0411158},
year = {2009}
}
Comments
11 pages, 9 figures