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dc.contributor.authorNies, L.
dc.contributor.authorCanete, L.
dc.contributor.authorDao, D. D.
dc.contributor.authorGiraud, S.
dc.contributor.authorKankainen, A.
dc.contributor.authorLunney, D.
dc.contributor.authorNowacki, F.
dc.contributor.authorBastin, B.
dc.contributor.authorStryjczyk, M.
dc.contributor.authorAscher, P.
dc.contributor.authorBlaum, K.
dc.contributor.authorCakirli, R. B.
dc.contributor.authorEronen, T.
dc.contributor.authorFischer, P.
dc.contributor.authorFlayol, M.
dc.contributor.authorGirard Alcindor, V.
dc.contributor.authorHerlert, A.
dc.contributor.authorJokinen, A.
dc.contributor.authorKhanam, A.
dc.contributor.authorKöster, U.
dc.contributor.authorLange, D.
dc.contributor.authorMoore, I. D.
dc.contributor.authorMüller, M.
dc.contributor.authorMougeot, M.
dc.contributor.authorNesterenko, D. A.
dc.contributor.authorPenttilä, H.
dc.contributor.authorPetrone, C.
dc.contributor.authorPohjalainen, I.
dc.contributor.authorde Roubin, A.
dc.contributor.authorRubchenya, V.
dc.contributor.authorSchweiger Ch.
dc.contributor.authorSchweikhard, L.
dc.contributor.authorVilen, M.
dc.contributor.authorÄystö, J.
dc.date.accessioned2023-12-04T07:29:57Z
dc.date.available2023-12-04T07:29:57Z
dc.date.issued2023
dc.identifier.citationNies, L., Canete, L., Dao, D. D., Giraud, S., Kankainen, A., Lunney, D., Nowacki, F., Bastin, B., Stryjczyk, M., Ascher, P., Blaum, K., Cakirli, R. B., Eronen, T., Fischer, P., Flayol, M., Girard Alcindor, V., Herlert, A., Jokinen, A., Khanam, A., . . . Äystö, J. (2023). Further Evidence for Shape Coexistence in 79Znm near Doubly Magic 78Ni. <i>Physical Review Letters</i>, <i>131</i>, Article 222503. <a href="https://doi.org/10.1103/PhysRevLett.131.222503" target="_blank">https://doi.org/10.1103/PhysRevLett.131.222503</a>
dc.identifier.otherCONVID_194699286
dc.identifier.urihttps://jyx.jyu.fi/handle/123456789/92175
dc.description.abstractIsomers close to doubly magic 78 28Ni50 provide essential information on the shell evolution and shape coexistence near the Z ¼ 28 and N ¼ 50 double shell closure. We report the excitation energy measurement of the 1=2þ isomer in 79 30Zn49 through independent high-precision mass measurements with the JYFLTRAP double Penning trap and with the ISOLTRAP multi-reflection time-of-flight mass spectrometer. We unambiguously place the 1=2þ isomer at 942(10) keV, slightly below the 5=2þ state at 983(3) keV. With the use of state-of-the-art shell-model diagonalizations, complemented with discrete nonorthogonal shell-model calculations which are used here for the first time to interpret shape coexistence, we find low-lying deformed intruder states, similar to other N ¼ 49 isotones. The 1=2þ isomer is interpreted as the bandhead of a low-lying deformed structure akin to a predicted low-lying deformed band in 80Zn, and points to shape coexistence in 79;80Zn similar to the one observed in 78Ni. The results make a strong case for confirming the claim of shape coexistence in this key region of the nuclear chart.en
dc.format.mimetypeapplication/pdf
dc.language.isoeng
dc.publisherAmerican Physical Society (APS)
dc.relation.ispartofseriesPhysical Review Letters
dc.rightsCC BY 4.0
dc.titleFurther Evidence for Shape Coexistence in 79Znm near Doubly Magic 78Ni
dc.typearticle
dc.identifier.urnURN:NBN:fi:jyu-202312048173
dc.contributor.laitosFysiikan laitosfi
dc.contributor.laitosDepartment of Physicsen
dc.contributor.oppiaineKiihdytinlaboratoriofi
dc.contributor.oppiaineResurssiviisausyhteisöfi
dc.contributor.oppiaineHyvinvoinnin tutkimuksen yhteisöfi
dc.contributor.oppiaineAccelerator Laboratoryen
dc.contributor.oppiaineSchool of Resource Wisdomen
dc.contributor.oppiaineSchool of Wellbeingen
dc.type.urihttp://purl.org/eprint/type/JournalArticle
dc.type.coarhttp://purl.org/coar/resource_type/c_2df8fbb1
dc.description.reviewstatuspeerReviewed
dc.relation.issn0031-9007
dc.relation.volume131
dc.type.versionpublishedVersion
dc.rights.copyright© Published by the American Physical Society, 2023
dc.rights.accesslevelopenAccessfi
dc.relation.grantnumber654002
dc.relation.grantnumber654002
dc.relation.grantnumber284516
dc.relation.grantnumber306980
dc.relation.grantnumber275389
dc.relation.grantnumber312544
dc.relation.grantnumber771036
dc.relation.grantnumber771036
dc.relation.grantnumber295207
dc.relation.projectidinfo:eu-repo/grantAgreement/EC/H2020/654002/EU//
dc.relation.projectidinfo:eu-repo/grantAgreement/EC/H2020/771036/EU//MAIDEN
dc.subject.ysoydinfysiikka
dc.format.contentfulltext
jyx.subject.urihttp://www.yso.fi/onto/yso/p14759
dc.rights.urlhttps://creativecommons.org/licenses/by/4.0/
dc.relation.doi10.1103/PhysRevLett.131.222503
dc.relation.funderEuropean Commissionen
dc.relation.funderResearch Council of Finlanden
dc.relation.funderResearch Council of Finlanden
dc.relation.funderResearch Council of Finlanden
dc.relation.funderResearch Council of Finlanden
dc.relation.funderEuropean Commissionen
dc.relation.funderResearch Council of Finlanden
dc.relation.funderEuroopan komissiofi
dc.relation.funderSuomen Akatemiafi
dc.relation.funderSuomen Akatemiafi
dc.relation.funderSuomen Akatemiafi
dc.relation.funderSuomen Akatemiafi
dc.relation.funderEuroopan komissiofi
dc.relation.funderSuomen Akatemiafi
jyx.fundingprogramResearch infrastructures, H2020en
jyx.fundingprogramResearch costs of Academy Research Fellow, AoFen
jyx.fundingprogramResearch costs of Academy Research Fellow, AoFen
jyx.fundingprogramAcademy Research Fellow, AoFen
jyx.fundingprogramResearch costs of Academy Research Fellow, AoFen
jyx.fundingprogramERC Consolidator Granten
jyx.fundingprogramAcademy Research Fellow, AoFen
jyx.fundingprogramResearch infrastructures, H2020fi
jyx.fundingprogramAkatemiatutkijan tutkimuskulut, SAfi
jyx.fundingprogramAkatemiatutkijan tutkimuskulut, SAfi
jyx.fundingprogramAkatemiatutkija, SAfi
jyx.fundingprogramAkatemiatutkijan tutkimuskulut, SAfi
jyx.fundingprogramERC Consolidator Grantfi
jyx.fundingprogramAkatemiatutkija, SAfi
jyx.fundinginformationWe thank the ISOLDE technical group and the ISOLDE Collaboration for their support. We acknowledge the support of the German Max Planck Society, the French Institut National de Physique Nucléaire et de Physique des Particules (IN2P3), the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation programme (Grant Agreements No. 682841 “ASTRUm,” 654002 “ENSAR2,” 101020842 “EUSTRONG,” and 771036 “MAIDEN”), as well as the German Federal Ministry of Education and Research (BMBF; Grants No. 05P18HGCIA, No. 05P21HGCI1, and No. 05P21RDFNB). L. N. acknowledges support from the Wolfgang Gentner Programme of the German Federal Ministry of Education and Research (Grant No. 13E18CHA). This work has been supported by the Academy of Finland under the Finnish Centre of Excellence Program (Nuclear and Accelerator Based Physics Research at JYFL 2012-2017), and under Academy of Finland Grants No. 275389, No. 284516, No. 312544, No. 295207, and No. 306980. We acknowledge the bilateral mobility grant from the Institut Français in Finland, the Embassy of France in Finland, the French Ministry of Higher Education and Research, and the Finnish Society of Science and Letters. We are grateful for the mobility support from PICS MITICANS (Manipulation of Ions in Traps and Ion sourCes for Atomic and Nuclear Spectroscopy). S. G. acknowledges the mobility grant from the EDPSIME. F. N and D. D. D. acknowledge the financial support of CNRS/IN2P3, France, via ABI-CONFI master projet. The JYFLTRAP experiment was conducted by L. C., S. G., A. K., B. B., P. A., T. E., V. G. A., A. J., A. K., I. D. M., D. A. N., F. D. O., H. P., C. P., I. P., A. D. R., V. R., M. V., and J. Ä. The ISOLTRAP experiment was conducted by L. N., R. B. C., P. F., M. F., A. H., D. La., M. Mü., M. M., Ch. S., and was conceived by U.K. The theoretical calculations were performed by D. D. D. and F. N. Funding and supervision were provided, in parts, by K. B. and L. S. The manuscript was prepared by L. N., D. D. D., A. K., D. Lu., F. N., and M. S. All authors contributed to the editing of the manuscript.
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