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Mg isotopes and the disappearance of magic N=20 - Laser and beta-NMR studies

Collinear laser spectroscopy and beta-NMR spectroscopy with optical pumping were applied at ISOLDE/CERN to measure for the first time the magnetic moments of neutron-rich 27Mg, 29Mg, 31Mg and 33Mg, along with the spins of the two latter. The magnetic moment of 27Mg was derived from its hyperfine str...

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Autor principal: Kowalska, M
Lenguaje:eng
Publicado: 2007
Materias:
Acceso en línea:https://dx.doi.org/10.1007/s10751-007-9512-9
http://cds.cern.ch/record/1019675
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author Kowalska, M
author_facet Kowalska, M
author_sort Kowalska, M
collection CERN
description Collinear laser spectroscopy and beta-NMR spectroscopy with optical pumping were applied at ISOLDE/CERN to measure for the first time the magnetic moments of neutron-rich 27Mg, 29Mg, 31Mg and 33Mg, along with the spins of the two latter. The magnetic moment of 27Mg was derived from its hyperfine structure detected in UV fluorescent light, whereas the nuclear magnetic resonance observed in beta-decay asymmetry from a polarised ensemble of nuclei gave the magnetic moment of 29Mg. For 31Mg and 33Mg, the hyperfine structure and nuclear magnetic resonance gave the spin and the magnetic moment. The preliminary results for 27Mg and 29Mg are consistent with a large neutron shell gap at N=20, whereas data on 31Mg show that for this nucleus N=20 is not a magic number, which is also the case for 33Mg, based on preliminary analysis. Thus, the two latter isotopes belong to the island of inversion.
id cern-1019675
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2007
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spelling cern-10196752019-09-30T06:29:59Zdoi:10.1007/s10751-007-9512-9http://cds.cern.ch/record/1019675engKowalska, MMg isotopes and the disappearance of magic N=20 - Laser and beta-NMR studiesParticle Physics - ExperimentCollinear laser spectroscopy and beta-NMR spectroscopy with optical pumping were applied at ISOLDE/CERN to measure for the first time the magnetic moments of neutron-rich 27Mg, 29Mg, 31Mg and 33Mg, along with the spins of the two latter. The magnetic moment of 27Mg was derived from its hyperfine structure detected in UV fluorescent light, whereas the nuclear magnetic resonance observed in beta-decay asymmetry from a polarised ensemble of nuclei gave the magnetic moment of 29Mg. For 31Mg and 33Mg, the hyperfine structure and nuclear magnetic resonance gave the spin and the magnetic moment. The preliminary results for 27Mg and 29Mg are consistent with a large neutron shell gap at N=20, whereas data on 31Mg show that for this nucleus N=20 is not a magic number, which is also the case for 33Mg, based on preliminary analysis. Thus, the two latter isotopes belong to the island of inversion.CERN-PH-EP-2007-003oai:cds.cern.ch:10196752007-02-27
spellingShingle Particle Physics - Experiment
Kowalska, M
Mg isotopes and the disappearance of magic N=20 - Laser and beta-NMR studies
title Mg isotopes and the disappearance of magic N=20 - Laser and beta-NMR studies
title_full Mg isotopes and the disappearance of magic N=20 - Laser and beta-NMR studies
title_fullStr Mg isotopes and the disappearance of magic N=20 - Laser and beta-NMR studies
title_full_unstemmed Mg isotopes and the disappearance of magic N=20 - Laser and beta-NMR studies
title_short Mg isotopes and the disappearance of magic N=20 - Laser and beta-NMR studies
title_sort mg isotopes and the disappearance of magic n=20 - laser and beta-nmr studies
topic Particle Physics - Experiment
url https://dx.doi.org/10.1007/s10751-007-9512-9
http://cds.cern.ch/record/1019675
work_keys_str_mv AT kowalskam mgisotopesandthedisappearanceofmagicn20laserandbetanmrstudies