Suppression of Kelvon-induced decay of quantized vortices in oblate Bose-Einstein condensates

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Abstract

We study the Kelvin mode excitations on a vortex line in a three-dimensional trapped Bose-Einstein condensate at finite temperature. Our stochastic Gross-Pitaevskii simulations show that the activation of these modes can be suppressed by tightening the confinement along the direction of the vortex line, leading to a strong suppression in the vortex decay rate as the system enters a regime of two-dimensional vortex dynamics. As the system approaches the condensation transition temperature, we find that the vortex decay rate is strongly sensitive to dimensionality and temperature, observing a large enhancement for quasi-two-dimensional traps. Three-dimensional simulations of the recent vortex dipole decay experiment of Neely confirm two-dimensional vortex dynamics and predict a dipole lifetime consistent with experimental observations and suppression of Kelvon-induced vortex decay in highly oblate condensates. © 2011 American Physical Society.

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Rooney, S. J., Blakie, P. B., Anderson, B. P., & Bradley, A. S. (2011). Suppression of Kelvon-induced decay of quantized vortices in oblate Bose-Einstein condensates. Physical Review A - Atomic, Molecular, and Optical Physics, 84(2). https://doi.org/10.1103/PhysRevA.84.023637

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