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Phys. Rev. A 70, 033602 (2004) [6 pages]

Vortex lattice stability and phase coherence in three-dimensional rapidly rotating Bose-Einstein condensates

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S. Andrew Gifford and Gordon Baym
Department of Physics, University of Illinois at Urbana-Champaign, Urbana, Ilinois 61801, USA and NORDITA, Blegdamsvej 17, DK-2100 Copenhagen Ø, Denmark

See Also: Erratum

Received 10 May 2004; published 2 September 2004

We establish the general equations of motion for the modes of a vortex lattice in a rapidly rotating Bose-Einstein condensate in three dimensions, taking into account the elastic energy of the lattice and the vortex line bending energy. As in two dimensions, the vortex lattice supports Tkachenko and gapped sound modes. In contrast, in three dimensions the Tkachenko mode frequency at long wavelengths becomes linear in the wave vector for any propagation direction out of the transverse plane. We compute the correlation functions of the vortex displacements and the superfluid order parameter for a homogeneous Bose gas of bounded extent in the axial direction. At zero temperature the vortex displacement correlations are convergent at large separation, but at finite temperatures, they grow with separation. The growth of the vortex displacements should lead to observable melting of vortex lattices at higher temperatures and somewhat lower particle number and faster rotation than in current experiments. At zero temperature a system of large extent in the axial direction maintains long range order-parameter correlations for large separation, but at finite temperatures the correlations decay with separation.

© 2004 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevA.70.033602
DOI:
10.1103/PhysRevA.70.033602
PACS:
03.75.Lm

See Also

Erratum: S. Andrew Gifford and Gordon Baym, Erratum: Vortex lattice stability and phase coherence in three-dimensional rapidly rotating Bose-Einstein condensates [Phys. Rev. A 70, 033602 (2004)], Phys. Rev. A 78, 029904 (2008).