Individual Low-Energy Toroidal Dipole State in ^{24}Mg

The low-energy dipole excitations in ^{24}Mg are investigated within the Skyrme quasiparticle random phase approximation for axial nuclei. The calculations with the force SLy6 reveal a remarkable feature: the lowest I^{π}K=1^{-}1 excitation (E=7.92  MeV) in ^{24}Mg is a vortical toroidal state (TS)...

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Published inPhysical review letters Vol. 120; no. 18; p. 182501
Main Authors Nesterenko, V O, Repko, A, Kvasil, J, Reinhard, P-G
Format Journal Article
LanguageEnglish
Published United States 04.05.2018
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Abstract The low-energy dipole excitations in ^{24}Mg are investigated within the Skyrme quasiparticle random phase approximation for axial nuclei. The calculations with the force SLy6 reveal a remarkable feature: the lowest I^{π}K=1^{-}1 excitation (E=7.92  MeV) in ^{24}Mg is a vortical toroidal state (TS) representing a specific vortex-antivortex realization of the well-known spherical Hill's vortex in a strongly deformed axial confinement. This is a striking example of an individual TS which can be much more easily discriminated in experiment than the toroidal dipole resonance embracing many states. The TS acquires the lowest energy due to the huge prolate axial deformation in ^{24}Mg. The result persists for different Skyrme parametrizations (SLy6, SVbas, SkM*). We analyze spectroscopic properties of the TS and its relation with the cluster structure of ^{24}Mg. Similar TSs could exist in other highly prolate light nuclei. They could serve as promising tests for various reactions to probe a vortical (toroidal) nuclear flow.
AbstractList The low-energy dipole excitations in ^{24}Mg are investigated within the Skyrme quasiparticle random phase approximation for axial nuclei. The calculations with the force SLy6 reveal a remarkable feature: the lowest I^{π}K=1^{-}1 excitation (E=7.92  MeV) in ^{24}Mg is a vortical toroidal state (TS) representing a specific vortex-antivortex realization of the well-known spherical Hill's vortex in a strongly deformed axial confinement. This is a striking example of an individual TS which can be much more easily discriminated in experiment than the toroidal dipole resonance embracing many states. The TS acquires the lowest energy due to the huge prolate axial deformation in ^{24}Mg. The result persists for different Skyrme parametrizations (SLy6, SVbas, SkM*). We analyze spectroscopic properties of the TS and its relation with the cluster structure of ^{24}Mg. Similar TSs could exist in other highly prolate light nuclei. They could serve as promising tests for various reactions to probe a vortical (toroidal) nuclear flow.
Author Nesterenko, V O
Reinhard, P-G
Kvasil, J
Repko, A
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  organization: Laboratory of Theoretical Physics, Joint Institute for Nuclear Research, Dubna, Moscow region 141980, Russia
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  givenname: A
  surname: Repko
  fullname: Repko, A
  organization: Department of Nuclear Physics, Institute of Physics SAS, 84511 Bratislava, Slovakia
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  surname: Kvasil
  fullname: Kvasil, J
  organization: Institute of Particle and Nuclear Physics, Charles University, CZ-18000 Prague, Czech Republic
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  givenname: P-G
  surname: Reinhard
  fullname: Reinhard, P-G
  organization: Institut für Theoretische Physik II, Universität Erlangen, D-91058 Erlangen, Germany
BackLink https://www.ncbi.nlm.nih.gov/pubmed/29775348$$D View this record in MEDLINE/PubMed
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Snippet The low-energy dipole excitations in ^{24}Mg are investigated within the Skyrme quasiparticle random phase approximation for axial nuclei. The calculations...
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Title Individual Low-Energy Toroidal Dipole State in ^{24}Mg
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