arXiv · 1108.0435
Modeling and control of entanglement dynamics in laser cooling of trapped atoms
Abstract
We discuss the dynamical behavior of the entanglement between the internal and the external degrees of freedom of a trapped atom in electromagnetically-induced transparency (EIT) laser cooling. It is shown that essential features of the intricate entanglement dynamics observed in full numerical simulations of the underlying quantum master equation can be understood in terms of a two-state model on the basis of Landau-Zener splittings in the atom-laser field Hamiltonian. An extension of this model to an effective non-Hermitian Hamiltonian is constructed which describes the decay of entanglement by spontaneous emission processes. We also discuss schemes for the control of entanglement and demonstrate that a permanent entanglement can be imprinted on trapped atoms through a rapid switch off of the driving fields. Finally, we point out fundamental distinctions between the entanglement created in EIT cooling and in the cooling scheme based on velocity-selective coherent population trapping.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Maryam Roghani, Heinz-Peter Breuer, Hanspeter Helm. 2011-08-01. Modeling and control of entanglement dynamics in laser cooling of trapped atoms. https://doi.org/10.1103/physreva.85.012313
Cite the original work for its findings. Save a collection to share your selection of sources.