Title :
Quantum control and quantum chaos in cavity QED
Author :
Uleysky, Michael Yu ; Prants, Sergey V.
Author_Institution :
Lab. of Nonlinear Dynamical Syst., Russian Acad. of Sci., Vladivostok, Russia
Abstract :
Nonlinear dynamics in the fundamental interaction between a two-level atom with recoil and a quantized radiation field in a high-quality cavity is studied. We consider the strongly coupled atom-field system as a quantum-classical hybrid with dynamically coupled quantum and classical degrees of freedom. It is shown that at given initial conditions the regime of atomic motion is governed mainly by the detuning of the atom-field resonance δ. We show that, even in the absence of any other interaction with environment, the interaction of a purely quantum atom-field system with the external atomic degree of freedom provides the emergence of classical dynamical chaos from quantum electrodynamics (QED). It manifest itself in the classical degree of freedom as a random walking of an atom inside the cavity and in the quantum degrees of freedom as a sensitive dependence of atomic inversion on small variations in initial conditions. It is shown that dependence of variance of entanglement on δ, correlates strongly with the dependence of maximum Lyapunov exponent on δ. This result provides a quantum-classical correspondence in a closed physical system.
Keywords :
Lyapunov methods; atom-photon collisions; chaos; nonlinear dynamical systems; quantum electrodynamics; quantum entanglement; Lyapunov exponent; atom-field resonance; atomic inversion; atomic motion; cavity QED; classical dynamical chaos; closed physical system; coupled atom-field system; dynamically coupled degrees of freedom; entanglement; nonlinear dynamics; quantized radiation field; quantum atom-field system; quantum chaos; quantum classical degrees of freedom; quantum control; quantum electrodynamics; quantum-classical hybrid; two-level atom; Atomic beams; Atomic measurements; Chaos; Chaotic communication; Electrodynamics; Legged locomotion; Nonlinear dynamical systems; Quantum computing; Quantum entanglement; Quantum mechanics;
Conference_Titel :
Physics and Control, 2005. Proceedings. 2005 International Conference
Print_ISBN :
0-7803-9235-3
DOI :
10.1109/PHYCON.2005.1514062