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Coulomb breakup of neutron-rich $^{29,30}$Na isotopes near the island of inversion

Authors :
Rahaman, A .
Datta, Ushasi
Aumann, T.
Beceiro-Novo, S.
Boretzky, K.
Caesar, C.
Carlson, B. V.
Catford, W. N.
Chakraborty, S.
Chartier, M.
Cortina-Gil, D.
Angelis, G. De.
Gonzalez-Diaz, D.
Emling, H.
Fernandez, P. Diaz
Fraile, L. M.
Ershova, O.
Geissel, H.
Jonson, B.
Johansson, H.
Kalantar-Nayestanaki, N.
Krücken, R.
Kröll, T.
Kurcewicz, J.
Langer, C.
Bleis, T. Le
Leifels, Y.
Münzenberg, G.
Marganiec, J.
Nilsson, T.
Nociforo, C.
Najafi, A.
Panin, V.
Paschalis, S.
Plag, R.
Reifarth, R.
Rigollet, C.
Ricciardi, V.
Rossi, D.
Scheit, H.
Simon, H.
Scheidenberger, C.
Typel, S.
Taylor, J.
Togano, Y.
Volkov, V.
Weick, H.
Wagner, A.
Wamers, F.
Weigand, M.
Winfield, J. S.
Yakorev, D.
Zoric, M.
Publication Year :
2016

Abstract

First results are reported on the ground state configurations of the neutron-rich $^{29,30}$Na isotopes, obtained via Coulomb dissociation (CD) measurements as a method of the direct probe. The invariant mass spectra of those nuclei have been obtained through measurement of the four-momentum of all decay products after Coulomb excitation on a $^{208}Pb$ target at energies of 400-430 MeV/nucleon using FRS-ALADIN-LAND setup at GSI, Darmstadt. Integrated Coulomb-dissociation cross-sections (CD) of 89 $(7)$ mb and 167 $(13)$ mb up to excitation energy of 10 MeV for one neutron removal from $^{29}$Na and $^{30}$Na respectively, have been extracted. The major part of one neutron removal, CD cross-sections of those nuclei populate core, in its' ground state. A comparison with the direct breakup model, suggests the predominant occupation of the valence neutron in the ground state of $^{29}$Na${(3/2^+)}$ and $^{30}$Na${(2^+)}$ is the $d$ orbital with small contribution in the $s$-orbital which are coupled with ground state of the core. The ground state configurations of these nuclei are as $^{28}$Na$_{gs (1^+)\otimes\nu_{s,d}$ and $^{29}$Na$_{gs}(3/2^+)\otimes\nu_{ s,d}$, respectively. The ground state spin and parity of these nuclei, obtained from this experiment are in agreement with earlier reported values. The spectroscopic factors for the valence neutron occupying the $s$ and $d$ orbitals for these nuclei in the ground state have been extracted and reported for the first time. A comparison of the experimental findings with the shell model calculation using MCSM suggests a lower limit of around 4.3 MeV of the sd-pf shell gap in $^{30}$Na.<br />Comment: Modified version of the manuscript is accepted for publication in Journal of Physics G, Jan., 2017

Subjects

Subjects :
Nuclear Experiment
Nuclear Theory

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1601.04002
Document Type :
Working Paper
Full Text :
https://doi.org/10.1088/1361-6471/aa594d