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Probing Sizes and Shapes of Nobelium Isotopes by Laser Spectroscopy.

Authors :
Raeder S
Ackermann D
Backe H
Beerwerth R
Berengut JC
Block M
Borschevsky A
Cheal B
Chhetri P
Düllmann CE
Dzuba VA
Eliav E
Even J
Ferrer R
Flambaum VV
Fritzsche S
Giacoppo F
Götz S
Heßberger FP
Huyse M
Kaldor U
Kaleja O
Khuyagbaatar J
Kunz P
Laatiaoui M
Lautenschläger F
Lauth W
Mistry AK
Minaya Ramirez E
Nazarewicz W
Porsev SG
Safronova MS
Safronova UI
Schuetrumpf B
Van Duppen P
Walther T
Wraith C
Yakushev A
Source :
Physical review letters [Phys Rev Lett] 2018 Jun 08; Vol. 120 (23), pp. 232503.
Publication Year :
2018

Abstract

Until recently, ground-state nuclear moments of the heaviest nuclei could only be inferred from nuclear spectroscopy, where model assumptions are required. Laser spectroscopy in combination with modern atomic structure calculations is now able to probe these moments directly, in a comprehensive and nuclear-model-independent way. Here we report on unique access to the differential mean-square charge radii of ^{252,253,254}No, and therefore to changes in nuclear size and shape. State-of-the-art nuclear density functional calculations describe well the changes in nuclear charge radii in the region of the heavy actinides, indicating an appreciable central depression in the deformed proton density distribution in ^{252,254}No isotopes. Finally, the hyperfine splitting of ^{253}No was evaluated, enabling a complementary measure of its (quadrupole) deformation, as well as an insight into the neutron single-particle wave function via the nuclear spin and magnetic moment.

Details

Language :
English
ISSN :
1079-7114
Volume :
120
Issue :
23
Database :
MEDLINE
Journal :
Physical review letters
Publication Type :
Academic Journal
Accession number :
29932712
Full Text :
https://doi.org/10.1103/PhysRevLett.120.232503