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Surface modes of ultra-cold atomic clouds with very large number of vortices

We study the surface modes of some of the vortex liquids recently found by means of exact diagonalizations in systems of rapidly rotating bosons. In contrast to the surface modes of Bose condensates, we find that the surface waves have a frequency linear in the excitation angular momentum, h-bar l &...

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Autor principal: Cazalilla, M A
Lenguaje:eng
Publicado: 2003
Materias:
Acceso en línea:http://cds.cern.ch/record/747767
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author Cazalilla, M A
author_facet Cazalilla, M A
author_sort Cazalilla, M A
collection CERN
description We study the surface modes of some of the vortex liquids recently found by means of exact diagonalizations in systems of rapidly rotating bosons. In contrast to the surface modes of Bose condensates, we find that the surface waves have a frequency linear in the excitation angular momentum, h-bar l > 0. Furthermore, in analogy with the edge waves of electronic quantum Hall states, these excitations are chiral, that is, they can be excited only for values of l that increase the total angular momentum of the vortex liquid. However, differently from the quantum Hall phenomena for electrons, we also find other excitations that are approximately degenerate in the laboratory frame with the surface modes, and which decrease the total angular momentum by l quanta. The surface modes of the Laughlin, as well as other scalar and vector boson states are analyzed, and their observable properties characterized. We argue that measurement of the response of a vortex liquid to a weak time-dependent potential that imparts angular momentum to the system should provide valuable information to characterize the vortex liquid. In particular, the intensity of the signal of the surface waves in the dynamic structure factor has been studied and found to depend on the type of vortex liquid. We point out that the existence of surface modes has observable consequences on the density profile of the Laughlin state. These features are due to the strongly correlated behavior of atoms in the vortex liquids. We point out that these correlations should be responsible for a remarkable stability of some vortex liquids with respect to three-body losses.
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spelling cern-7477672019-09-30T06:29:59Zhttp://cds.cern.ch/record/747767engCazalilla, M ASurface modes of ultra-cold atomic clouds with very large number of vorticesGeneral Theoretical PhysicsWe study the surface modes of some of the vortex liquids recently found by means of exact diagonalizations in systems of rapidly rotating bosons. In contrast to the surface modes of Bose condensates, we find that the surface waves have a frequency linear in the excitation angular momentum, h-bar l > 0. Furthermore, in analogy with the edge waves of electronic quantum Hall states, these excitations are chiral, that is, they can be excited only for values of l that increase the total angular momentum of the vortex liquid. However, differently from the quantum Hall phenomena for electrons, we also find other excitations that are approximately degenerate in the laboratory frame with the surface modes, and which decrease the total angular momentum by l quanta. The surface modes of the Laughlin, as well as other scalar and vector boson states are analyzed, and their observable properties characterized. We argue that measurement of the response of a vortex liquid to a weak time-dependent potential that imparts angular momentum to the system should provide valuable information to characterize the vortex liquid. In particular, the intensity of the signal of the surface waves in the dynamic structure factor has been studied and found to depend on the type of vortex liquid. We point out that the existence of surface modes has observable consequences on the density profile of the Laughlin state. These features are due to the strongly correlated behavior of atoms in the vortex liquids. We point out that these correlations should be responsible for a remarkable stability of some vortex liquids with respect to three-body losses.IC-2002-156oai:cds.cern.ch:7477672003
spellingShingle General Theoretical Physics
Cazalilla, M A
Surface modes of ultra-cold atomic clouds with very large number of vortices
title Surface modes of ultra-cold atomic clouds with very large number of vortices
title_full Surface modes of ultra-cold atomic clouds with very large number of vortices
title_fullStr Surface modes of ultra-cold atomic clouds with very large number of vortices
title_full_unstemmed Surface modes of ultra-cold atomic clouds with very large number of vortices
title_short Surface modes of ultra-cold atomic clouds with very large number of vortices
title_sort surface modes of ultra-cold atomic clouds with very large number of vortices
topic General Theoretical Physics
url http://cds.cern.ch/record/747767
work_keys_str_mv AT cazalillama surfacemodesofultracoldatomiccloudswithverylargenumberofvortices