Atomic collision dynamics in optical lattices
arXiv:physics/0107053 · doi:10.1103/PhysRevA.65.033411
Abstract
We simulate collisions between two atoms, which move in an optical lattice under the dipole-dipole interaction. The model describes simultaneously the two basic dynamical processes, namely the Sisyphus cooling of single atoms, and the light-induced inelastic collisions between them. We consider the J=1/2 -> J=3/2 laser cooling transition for Cs, Rb and Na. We find that the hotter atoms in a thermal sample are selectively lost or heated by the collisions, which modifies the steady state distribution of atomic velocities, reminiscent of the evaporative cooling process.
17 pages, 15 figures
Cited by in corpus (6)
- Lindblad and non--Lindblad type dynamics of a quantum Brownian particle
- Radiative collisional heating at the Doppler limit for laser-cooled magnesium atoms
- Optical shielding of cold collisions in blue-detuned near-resonant optical lattices
- Cold collisions in dissipative optical lattices
- Collision rates in near-resonant optical lattices
- Cold collisions in strong laser fields: partial wave analysis of magnesium collisions