Rapidly rotating atomic gases
Top Cited Papers
- 1 November 2008
- journal article
- research article
- Published by Taylor & Francis in Advances in Physics
- Vol. 57 (6), 539-616
- https://doi.org/10.1080/00018730802564122
Abstract
In this article, we review developments in the theory of rapidly rotating degenerate atomic gases. The main focus is on the equilibrium properties of a single-component atomic Bose gas, which (at least at rest) forms a Bose–Einstein condensate. Rotation leads to the formation of quantized vortices which order into a vortex array, in close analogy with the behaviour of superfluid helium. Under conditions of rapid rotation, when the vortex density becomes large, atomic Bose gases offer the possibility to explore the physics of quantized vortices in novel parameter regimes. First, there is an interesting regime in which the vortices become sufficiently dense that their cores, as set by the healing length, start to overlap. In this regime, the theoretical description simplifies, allowing a reduction to single-particle states in the lowest Landau level. Second, one can envisage entering a regime of very high vortex density, when the number of vortices becomes comparable to the number of particles in the gas. In this regime, theory predicts the appearance of a series of strongly correlated phases, which can be viewed as bosonic versions of fractional quantum Hall states. In this article, we describe the equilibrium properties of rapidly rotating atomic Bose gases in both the mean-field and the strongly correlated regimes, and related theoretical developments for Bose gases in lattices, for multi-component Bose gases and for atomic Fermi gases. The current experimental situation and outlook for the future are discussed in light of these theoretical developments.Keywords
All Related Versions
This publication has 216 references indexed in Scilit:
- Vortex lattice locking in rotating two-component Bose–Einstein condensatesNew Journal of Physics, 2008
- Lowest-Landau-level description of a Bose-Einstein condensate in a rapidly rotating anisotropic trapPhysical Review A, 2007
- Validity of the lowest-Landau-level approximation for rotating Bose gasesPhysical Review A, 2006
- Spin textures in slowly rotating Bose-Einstein condensatesPhysical Review A, 2004
- Exact eigenstates for repulsive bosons in two dimensionsPhysical Review A, 2000
- Bose condensates at high angular momentaPhysical Review A, 2000
- Binary Bose-Einstein condensate mixtures in weakly and strongly segregated phasesPhysical Review A, 1998
- Bose-Einstein Condensation in Liquid HeliumPublished by Cambridge University Press (CUP) ,1995
- Josephson-junction arrays in transverse magnetic fields: Ground states and critical currentsPhysical Review B, 1985
- Bemerkung zur Quantelung des harmonischen Oszillators im MagnetfeldThe European Physical Journal A, 1928