Vortices in Bose-Einstein condensates - finite-size effects and the thermodynamic limit
arXiv:1305.3878 · doi:10.1103/PhysRevA.87.053615
Abstract
For a weakly-interacting Bose gas rotating in a harmonic trap we relate the yrast states of small systems (that can be treated exactly) to the thermodynamic limit (derived within the mean-field approximation). For a few dozens of atoms, the yrast line shows distinct quasi-periodic oscillations with increasing angular momentum that originate from the internal structure of the exact many-body states. These finite-size effects disappear in the thermodynamic limit, where the Gross-Pitaevskii approximation provides the exact energy to leading order in the number of particles N. However, the exact yrast states reveal significant structure not captured by the mean-field approximation: Even in the limit of large N, the corresponding mean-field solution accounts for only a fraction of the total weight of the exact quantum state.
Phys Rev A, in press
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- Fragmentation and correlations in a rotating Bose-Einstein condensate undergoing breakup
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- Condensates Breaking Up Under Rotation
- Vortex patterns in moderately rotating Bose-condensed gas
- Spatially partitioned many-body vortices
- Finite-size effects in the dynamics of few bosons in a ring potential
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- Rotation quenches in trapped bosonic systems
- Many-body effects in the excitations and dynamics of trapped Bose-Einstein condensates
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