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dc.date.accessioned2020-05-14T18:57:41Z
dc.date.available2020-05-14T18:57:41Z
dc.date.created2019-06-17T16:18:44Z
dc.date.issued2019
dc.identifier.citationButler, P.A. Gaffney, LP Spagnoletti, P. Konki, J. Scheck, M. Smith, J.F. Abrahams, K. Bowry, M. Cederkall, J. Chupp, T. De Angelis, G. De Witte, H. Garrett, P.E. Goldkuhle, A. Henrich, C. Illana, A. Johnston, K. Joss, D.T. Keatings, J.M. Kelly, N.A. Komorowska, M. Kröll, T. Lozano, M. Nara Singh, B.S. O'Donnell, D. Ojala, J. Page, R.D. Pedersen, Line Gaard Raison, C. Reiter, P Rodriguez, J.A. Rosiak, D. Rothe, S. Shneidman, T.M. Siebeck, B. Seidlitz, M. Sinclair, J. Stryjczyk, M. Van Duppen, P Vinals, S. Virtanen, V. Warr, N. Wrzosek-Lipska, K Zielinska, M. . The observation of vibrating pear-shapes in radon nuclei. Nature Communications. 2019, 10
dc.identifier.urihttp://hdl.handle.net/10852/75605
dc.description.abstractThere is a large body of evidence that atomic nuclei can undergo octupole distortion and assume the shape of a pear. This phenomenon is important for measurements of electric-dipole moments of atoms, which would indicate CP violation and hence probe physics beyond the Standard Model of particle physics. Isotopes of both radon and radium have been identified as candidates for such measurements. Here, we observed the low-lying quantum states in 224Rn and 226Rn by accelerating beams of these radioactive nuclei. We show that radon isotopes undergo octupole vibrations but do not possess static pear-shapes in their ground states. We conclude that radon atoms provide less favourable conditions for the enhancement of a measurable atomic electric-dipole moment.en_US
dc.languageEN
dc.rightsAttribution 4.0 International
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.titleThe observation of vibrating pear-shapes in radon nucleien_US
dc.typeJournal articleen_US
dc.creator.authorButler, P.A.
dc.creator.authorGaffney, LP
dc.creator.authorSpagnoletti, P.
dc.creator.authorKonki, J.
dc.creator.authorScheck, M.
dc.creator.authorSmith, J.F.
dc.creator.authorAbrahams, K.
dc.creator.authorBowry, M.
dc.creator.authorCederkall, J.
dc.creator.authorChupp, T.
dc.creator.authorDe Angelis, G.
dc.creator.authorDe Witte, H.
dc.creator.authorGarrett, P.E.
dc.creator.authorGoldkuhle, A.
dc.creator.authorHenrich, C.
dc.creator.authorIllana, A.
dc.creator.authorJohnston, K.
dc.creator.authorJoss, D.T.
dc.creator.authorKeatings, J.M.
dc.creator.authorKelly, N.A.
dc.creator.authorKomorowska, M.
dc.creator.authorKröll, T.
dc.creator.authorLozano, M.
dc.creator.authorNara Singh, B.S.
dc.creator.authorO'Donnell, D.
dc.creator.authorOjala, J.
dc.creator.authorPage, R.D.
dc.creator.authorPedersen, Line Gaard
dc.creator.authorRaison, C.
dc.creator.authorReiter, P
dc.creator.authorRodriguez, J.A.
dc.creator.authorRosiak, D.
dc.creator.authorRothe, S.
dc.creator.authorShneidman, T.M.
dc.creator.authorSiebeck, B.
dc.creator.authorSeidlitz, M.
dc.creator.authorSinclair, J.
dc.creator.authorStryjczyk, M.
dc.creator.authorVan Duppen, P
dc.creator.authorVinals, S.
dc.creator.authorVirtanen, V.
dc.creator.authorWarr, N.
dc.creator.authorWrzosek-Lipska, K
dc.creator.authorZielinska, M.
cristin.unitcode185,15,4,0
cristin.unitnameFysisk institutt
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode2
dc.identifier.cristin1705452
dc.identifier.bibliographiccitationinfo:ofi/fmt:kev:mtx:ctx&ctx_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.jtitle=Nature Communications&rft.volume=10&rft.spage=&rft.date=2019
dc.identifier.jtitleNature Communications
dc.identifier.volume10
dc.identifier.issue1
dc.identifier.doihttps://doi.org/10.1038/s41467-019-10494-5
dc.identifier.urnURN:NBN:no-78721
dc.type.documentTidsskriftartikkelen_US
dc.type.peerreviewedPeer reviewed
dc.source.issn2041-1723
dc.identifier.fulltextFulltext https://www.duo.uio.no/bitstream/handle/10852/75605/2/s41467-019-10494-5.pdf
dc.type.versionPublishedVersion
cristin.articleid2473
dc.relation.projectNFR/255208


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