Publication | Open Access
Quantum Spin Dynamics of Mode-Squeezed Luttinger Liquids in Two-Component Atomic Gases
121
Citations
27
References
2008
Year
Quantum DynamicUltracold Bosonic GasesQuantum LiquidEngineeringQuantum Spin DynamicsMany-body Quantum PhysicSpin DynamicSpin PhenomenonTwo-component Atomic GasesQuantum ComputingUltracold AtomSpin DynamicsQuantum EntanglementQuantum SciencePhysicsMany-body Spin DynamicsRamsey InterferometryBose-einstein CondensationSpintronicsNatural SciencesApplied PhysicsCondensed Matter PhysicsMode-squeezed Luttinger LiquidsDisordered Quantum System
We report on the observation of many-body spin dynamics of interacting, one-dimensional (1D) ultracold bosonic gases with two spin states. By controlling the nonlinear atomic interactions close to a Feshbach resonance we are able to induce a phase diffusive many-body spin dynamics of the relative phase between the two components. We monitor this dynamical evolution by Ramsey interferometry, supplemented by a novel, many-body echo technique, which unveils the role of quantum fluctuations in 1D. We find that the time evolution of the system is well described by a Luttinger liquid initially prepared in a multimode squeezed state. Our approach allows us to probe the nonequilibrium evolution of one-dimensional many-body quantum systems.
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