Ground-state structure and stability of dipolar condensates in anisotropic traps
arXiv:cond-mat/0703044 · doi:10.1103/PhysRevA.75.053604
Abstract
We study the Hartree ground state of a dipolar condensate of atoms or molecules in an three-dimensional anisotropic geometry and at T=0. We determine the stability of the condensate as a function of the aspect ratios of the trap frequencies and of the dipolar strength. We find numerically a rich phase space structure characterized by various structures of the ground-state density profile.
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- Structure formation during the collapse of a dipolar atomic Bose-Einstein condensate
- Vortices in dipolar condensates with dominant dipolar interactions
- Coherent collapse of a dipolar Bose-Einstein condensate for different trap geometries
- Bose-Einstein condensates with attractive 1/r interaction: The case of self-trapping
- Bifurcations, order, and chaos in the Bose-Einstein condensation of dipolar gases
- Stability of the density-wave state of a dipolar condensate in a pancake trap
- Observing collapse in two colliding dipolar Bose-Einstein condensates