Rapidly rotating Bose condensates
arXiv:cond-mat/0408401 · doi:10.1007/s10909-005-2268-1
Abstract
How does a rapidly rotating condensed Bose gas carry extreme amounts of angular momentum? The energetically favored state of a not-too-rapidly rotating Bose condensed gas is, as observed, a triangular lattice of singly quantized vortices. This paper describes the fates of the vortex lattice in both harmonic and anharmonic traps when condensates are rotated extremely rapidly.
In Proceedings of Quantum Fluids and Solids 2004; to be published in JLTP
Cited by in corpus (18)
- Symmetry breaking and quantum correlations in finite systems: Studies of quantum dots and ultracold Bose gases and related nuclear and chemical methods
- Spin textures in rotating two-component Bose-Einstein condensates
- Quantum Hall physics in rotating Bose-Einstein condensates
- Vortices in quantum droplets: Analogies between boson and fermion systems
- Energy and Vorticity in Fast Rotating Bose-Einstein Condensates
- Rapidly Rotating Bose-Einstein Condensates in Strongly Anharmonic Traps
- The Yrast Line of a Rapidly Rotating Bose Gas: Gross-Pitaevskii Regime
- Rapidly rotating boson molecules with long or short range repulsion: an exact diagonalization study
- Reversal of the circulation of a vortex by quantum tunneling in trapped Bose systems
- Hubbard model for atomic impurities bound by the vortex lattice of a rotating BEC
- The TF Limit for Rapidly Rotating Bose Gases in Anharmonic Traps
- Symmetry-conserving vortex clusters in small rotating clouds of ultracold bosons
- Dislocation-Mediated Melting in Superfluid Vortex Lattices
- Quantal molecular description and universal aspects of the spectra of bosons and fermions in the lowest Landau level
- A fully quantal molecular description for the spectra of bosons and fermions in the lowest Landau level
- Reaching the quantum Hall regime with rotating Rydberg-dressed atoms
- Collective modes of vortex lattices in two-component Bose-Einstein condensates under synthetic gauge fields
- Interaction Quench Dynamics and Stability of Quantum Vortices in Rotating Bose-Einstein Condensates