Publication | Open Access
Bloch Oscillations and Mean-Field Effects of Bose-Einstein Condensates in 1D Optical Lattices
531
Citations
21
References
2001
Year
PhotonicsQuantum ScienceBloch OscillationsEngineeringQuantum Lattice SystemPhysicsNatural SciencesApplied PhysicsCondensed Matter PhysicsDisordered Quantum SystemUltracold AtomOptical LatticesQuantum EntanglementLattice BeamsBose-einstein CondensationGross-pitaevskii EquationEffective PotentialMean-field Effects
Bose‑Einstein condensates were loaded into one‑dimensional, off‑resonant optical lattices and accelerated by chirping the frequency difference between the lattice beams. At shallow lattice depths Bloch oscillations were observed, while further reducing the depth induced Landau‑Zener tunneling that was used to probe the mean‑field‑modified effective potential, which was measured across densities and geometries and matched theoretical predictions. Choi and Niu, *Phys.
We have loaded Bose-Einstein condensates into one-dimensional, off-resonant optical lattices and accelerated them by chirping the frequency difference between the two lattice beams. For small values of the lattice well depth, Bloch oscillations were observed. Reducing the potential depth further, Landau-Zener tunneling out of the lowest lattice band, leading to a breakdown of the oscillations, was also studied and used as a probe for the effective potential resulting from mean-field interactions as predicted by Choi and Niu [Phys. Rev. Lett. 82, 2022 (1999)]. The effective potential was measured for various condensate densities and trap geometries, yielding good qualitative agreement with theoretical calculations.
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