arXiv Analytics

Sign in

arXiv:cond-mat/0509498AbstractReferencesReviewsResources

Bose-Einstein condensation of trapped atoms with dipole interactions

Kwangsik Nho, D. P. Landau

Published 2005-09-19Version 1

The path integral Monte Carlo method is used to simulate dilute trapped Bose gases and to investigate the equilibrium properties at finite temperatures. The quantum particles have a long-range dipole-dipole interaction and a short-range s-wave interaction. Using an anisotropic pseudopotential for the long-range dipolar interaction and a hard-sphere potential for the short-range s-wave interaction, we calculate the energetics and structural properties as a function of temperature and the number of particles. Also, in order to determine the effects of dipole-dipole forces and the influence of the trapping field on the dipolar condensate, we use two cylindrically symmetric harmonic confinements (a cigar-shaped trap and a disk-shaped trap). We find that the net effect of dipole-dipole interactions is governed by the trapping geometry. For a cigar-shaped trap, the net contribution of dipolar interactions is attractive and the shrinking of the density profiles is observed. For a disk-shaped trap, the net effect of long-range dipolar forces is repulsive and the density profiles expand.

Related articles: Most relevant | Search more
arXiv:cond-mat/9710045 (Published 1997-10-04)
Theory of Bose-Einstein condensation for trapped atoms
arXiv:cond-mat/0012459 (Published 2000-12-25)
Thermodynamics of Bose-Einstein condensation of relativistic gas
arXiv:1104.4571 [cond-mat.stat-mech] (Published 2011-04-23, updated 2012-08-24)
Bose-Einstein condensation in generalised d dimensions