Publication | Open Access
Nonlinear atom-optical<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mi>δ</mml:mi></mml:math>-kicked harmonic oscillator using a Bose-Einstein condensate
54
Citations
19
References
2004
Year
Quantum DynamicEngineeringNonlinear OpticsOptical PropertiesNonlinear Wave PropagationUltracold AtomOptical SystemsQuantum MatterQuantum OpticsQuantum SciencePhotonicsPhysicsChaotic BehaviorNon-linear OpticClassical OpticsAtomic PhysicsBose-einstein CondensationRubidium AtomsQuantum OpticNatural SciencesOptical PhysicApplied PhysicsCondensed Matter PhysicsHarmonic Oscillator-Kicked Harmonic OscillatorQuantum Chaos
We experimentally investigate the atom-optical $\ensuremath{\delta}$-kicked harmonic oscillator for the case of nonlinearity due to collisional interactions present in a Bose-Einstein condensate. A Bose condensate of rubidium atoms tightly confined in a static harmonic magnetic trap is exposed to a one-dimensional optical standing-wave potential that is pulsed on periodically. We focus on the quantum antiresonance case for which the classical periodic behavior is simple and well understood. We show that after a small number of kicks the dynamics are dominated by dephasing of matter wave interference due to the finite width of the condensate's initial momentum distribution. In addition, we demonstrate that the nonlinear mean-field interaction in a typical harmonically confined Bose condensate is not sufficient to give rise to chaotic behavior.
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