
Stephanie Reimann
Professor

Rotating Bose-Einstein condensates: Closing the gap between exact and mean-field solutions
Author
Summary, in English
When a Bose-Einstein-condensed cloud of atoms is given some angular momentum, it forms vortices arranged in structures with a discrete rotational symmetry. For these vortex states, the Hilbert space of the exact solution separates into a "primary" space related to the mean-field Gross-Pitaevskii solution and a "complementary" space including the corrections beyond mean field. Considering a weakly interacting Bose-Einstein condensate of harmonically trapped atoms, we demonstrate how this separation can be used to close the conceptual gap between exact solutions for systems with only a few atoms and the thermodynamic limit for which the mean field is the correct leading-order approximation. Although we illustrate this approach for the case of weak interactions, it is expected to be more generally valid.
Department/s
- NanoLund: Center for Nanoscience
- Mathematical Physics
Publishing year
2015
Language
English
Publication/Series
Physical Review A (Atomic, Molecular and Optical Physics)
Volume
91
Issue
3
Document type
Journal article
Publisher
American Physical Society
Topic
- Physical Sciences
Status
Published
ISBN/ISSN/Other
- ISSN: 1050-2947