Controlling collapse in Bose-Einstein condensates by temporal modulation of the scattering length
Top Cited Papers
Open Access
- 21 January 2003
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review A
- Vol. 67 (1) , 013605
- https://doi.org/10.1103/physreva.67.013605
Abstract
We consider, by means of the variational approximation (VA) and direct numerical simulations of the Gross-Pitaevskii (GP) equation, the dynamics of two-dimensional (2D) and 3D condensates with a scattering length containing constant and harmonically varying parts, which can be achieved with an ac magnetic field tuned to the Feshbach resonance. For a rapid time modulation, we develop an approach based on the direct averaging of the GP equation, without using the VA. In the 2D case, both VA and direct simulations, as well as the averaging method, reveal the existence of stable self-confined condensates without an external trap, in agreement with qualitatively similar results recently reported for spatial solitons in nonlinear optics. In the 3D case, the VA again predicts the existence of a stable self-confined condensate without a trap. In this case, direct simulations demonstrate that the stability is limited in time, eventually switching into collapse, even though the constant part of the scattering length is positive (but not too large). Thus a spatially uniform ac magnetic field, resonantly tuned to control the scattering length, may play the role of an effective trap confining the condensate, and sometimes causing its collapse.Keywords
All Related Versions
This publication has 24 references indexed in Scilit:
- Formation of a Matter-Wave Bright SolitonScience, 2002
- Formation and propagation of matter-wave soliton trainsNature, 2002
- Stable (2+1)-dimensional solitons in a layered medium with sign-alternating Kerr nonlinearityJournal of the Optical Society of America B, 2002
- StableBose-Einstein Condensates with Widely Tunable InteractionsPhysical Review Letters, 2000
- Self-guiding light in layered nonlinear mediaOptics Letters, 2000
- Theory of Bose-Einstein condensation in trapped gasesReviews of Modern Physics, 1999
- Wave collapse in physics: principles and applications to light and plasma wavesPhysics Reports, 1998
- Wave Packet Dynamics with Bose-Einstein CondensatesPhysical Review Letters, 1998
- Evolution and Global Collapse of Trapped Bose Condensates under Variations of the Scattering LengthPhysical Review Letters, 1997
- Spatiotemporal solitons in multidimensional optical media with a quadratic nonlinearityPhysical Review E, 1997