6533b855fe1ef96bd12b139c
RESEARCH PRODUCT
Changes in nuclear structure along the Mn isotopic chain studied via charge radii
Bradley ChealCh. GeppertS. Malbrunot-ettenauerH. HeylenR. SánchezD. T. YordanovW. GeithnerS. M. LenziR. F. Garcia RuizL. XieTakaharu OtsukaMark BissellW. NoertershaeuserIain MooreIain MooreStephan FritzscheT. Day GoodacreYusuke TsunodaXiaofei YangW. GinsL. K. GrobJ. BillowesR. BeerwerthPaul CampbellSebastian RotheC. WraithRalf Erik RosselMagda KowalskaB. A. MarshK. KreimJ. BonnardC. BabcockKlaus BlaumJ. PapugaB. MaassGerda NeyensD. V. FedorovRainer Neugartsubject
Nuclear and High Energy PhysicsField (physics)N=28FOS: Physical sciences114 Physical sciences01 natural sciencesSpectral line0103 physical sciencesPROGRAMNuclear Physics - ExperimentNeutronNuclear Experiment (nucl-ex)LASER SPECTROSCOPY010306 general physicsSpectroscopyCALCIUM ISOTOPESNuclear ExperimentHyperfine structureisotopesPhysicsisotoopitta114010308 nuclear & particles physicsNuclear structureSHIFTShyperfine spectraOrder (ring theory)Charge (physics)mangaaniQUADRUPOLE-MOMENTSnuclear structuremanganeseSHELL-MODELlaser spectroscopyNEUTRONPräzisionsexperimente - Abteilung BlaumAtomic physicsdescription
The hyperfine spectra of $^{51,53-64}$Mn were measured in two experimental runs using collinear laser spectroscopy at ISOLDE, CERN. Laser spectroscopy was performed on the atomic $3d^5\ 4s^2\ ^{6}\text{S}_{5/2}\rightarrow 3d^5\ 4s4p\ ^{6}\text{P}_{3/2}$ and ionic $3d^5\ 4s\ ^{5}\text{S}_2 \rightarrow 3d^5\ 4p\ ^{5}\text{P}_3$ transitions, yielding two sets of isotope shifts. The mass and field shift factors for both transitions have been calculated in the multiconfiguration Dirac-Fock framework and were combined with a King plot analysis in order to obtain a consistent set of mean-square charge radii which, together with earlier work on neutron-deficient Mn, allow the study of nuclear structure changes from $N=25$ across $N=28$ up to $N=39$. A clear development of deformation is observed towards $N=40$, confirming the conclusions of the nuclear moments studies. From a Monte Carlo Shell Model study of the shape in the Mn isotopic chain, it is suggested that the observed development of deformation is not only due to an increase in static prolate deformation but also due to shape fluctuations and triaxiality. The changes in mean-square charge radii are well reproduced using the Duflo-Zuker formula except in the case of large deformation.
year | journal | country | edition | language |
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2016-11-28 | Physical Review C |