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Engineering vortex rings and systems for controlled studies of vortex interactions in Bose-Einstein condensates

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Engineering vortex rings and systems for controlled studies of vortex interactions in Bose-Einstein condensates. / Ruostekoski, Janne; Dutton, Zachary.
In: Physical review a, Vol. 72, No. 6, 063626, 30.12.2005.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

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Ruostekoski J, Dutton Z. Engineering vortex rings and systems for controlled studies of vortex interactions in Bose-Einstein condensates. Physical review a. 2005 Dec 30;72(6):063626. doi: 10.1103/PhysRevA.72.063626

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@article{7c470df5c9ae418aafde56df505a2c1c,
title = "Engineering vortex rings and systems for controlled studies of vortex interactions in Bose-Einstein condensates",
abstract = "We study controlled methods of preparing vortex configurations in atomic Bose-Einstein condensates and their use in the studies of fundamental vortex scattering, reconnection processes, and superfluid sound emission. We explore techniques of imprinting vortex rings by means of coherently driving internal atomic transitions with electromagnetic fields which exhibit singular phase profiles. In particular, we show that a vortex ring can be prepared by two focused co-propagating Gaussian laser beams. More complex vortex systems may also be imprinted by directly superposing simpler field configurations or by programming their phase profiles on optical holograms. We analyze specific examples of two merging vortex rings in a trapped two-species 87Rb gas. We calculate the radiated sound energy in the reconnection process and show that the vortex relaxation and the redistribution of sound energy can be controlled by the imprinting process. As another creation technique, we study engineering pairs of two-dimensional point vortices in the condensates using a `light roadblock' in ultraslow light propagation. We show how this can be used to study vortex collisions in compressible superfluids and how these collisions result in energy dissipation via phonons and, sometimes, annihilation of vortex pairs.",
author = "Janne Ruostekoski and Zachary Dutton",
year = "2005",
month = dec,
day = "30",
doi = "10.1103/PhysRevA.72.063626",
language = "English",
volume = "72",
journal = "Physical review a",
issn = "1050-2947",
publisher = "American Physical Society",
number = "6",

}

RIS

TY - JOUR

T1 - Engineering vortex rings and systems for controlled studies of vortex interactions in Bose-Einstein condensates

AU - Ruostekoski, Janne

AU - Dutton, Zachary

PY - 2005/12/30

Y1 - 2005/12/30

N2 - We study controlled methods of preparing vortex configurations in atomic Bose-Einstein condensates and their use in the studies of fundamental vortex scattering, reconnection processes, and superfluid sound emission. We explore techniques of imprinting vortex rings by means of coherently driving internal atomic transitions with electromagnetic fields which exhibit singular phase profiles. In particular, we show that a vortex ring can be prepared by two focused co-propagating Gaussian laser beams. More complex vortex systems may also be imprinted by directly superposing simpler field configurations or by programming their phase profiles on optical holograms. We analyze specific examples of two merging vortex rings in a trapped two-species 87Rb gas. We calculate the radiated sound energy in the reconnection process and show that the vortex relaxation and the redistribution of sound energy can be controlled by the imprinting process. As another creation technique, we study engineering pairs of two-dimensional point vortices in the condensates using a `light roadblock' in ultraslow light propagation. We show how this can be used to study vortex collisions in compressible superfluids and how these collisions result in energy dissipation via phonons and, sometimes, annihilation of vortex pairs.

AB - We study controlled methods of preparing vortex configurations in atomic Bose-Einstein condensates and their use in the studies of fundamental vortex scattering, reconnection processes, and superfluid sound emission. We explore techniques of imprinting vortex rings by means of coherently driving internal atomic transitions with electromagnetic fields which exhibit singular phase profiles. In particular, we show that a vortex ring can be prepared by two focused co-propagating Gaussian laser beams. More complex vortex systems may also be imprinted by directly superposing simpler field configurations or by programming their phase profiles on optical holograms. We analyze specific examples of two merging vortex rings in a trapped two-species 87Rb gas. We calculate the radiated sound energy in the reconnection process and show that the vortex relaxation and the redistribution of sound energy can be controlled by the imprinting process. As another creation technique, we study engineering pairs of two-dimensional point vortices in the condensates using a `light roadblock' in ultraslow light propagation. We show how this can be used to study vortex collisions in compressible superfluids and how these collisions result in energy dissipation via phonons and, sometimes, annihilation of vortex pairs.

U2 - 10.1103/PhysRevA.72.063626

DO - 10.1103/PhysRevA.72.063626

M3 - Journal article

VL - 72

JO - Physical review a

JF - Physical review a

SN - 1050-2947

IS - 6

M1 - 063626

ER -