The structure of $^{36}$Ca under the Coulomb magnifying glass
Abstract
Detailed spectroscopy of the neutron-deficient nucleus Ca was obtained up to 9 MeV using the Ca(,)Ca and the Ca(,)Ca transfer reactions. The radioactive nuclei, produced by the LISE spectrometer at GANIL, interacted with the protons of the liquid Hydrogen target CRYPTA, to produce light ejectiles (the deuteron or triton ) that were detected in the MUST2 detector array, in coincidence with the heavy residues %identified by a zero degree detection system. %States have been measured up to 9 MeV. Our main findings are: i) a similar shift in energy for the 1 and 2 states by about -250 keV, as compared to the mirror nucleus S, ii) the discovery of an intruder 0 state at 2.83(13) MeV, which appears below the first 2 state, in contradiction with the situation in S, and iii) a tentative 0 state at 4.83(17) MeV, proposed to exhibit a bubble structure with two neutron vacancies in the 2s orbit. The inversion between the 0 and 2 states is due to the large mirror energy difference (MED) of -516(130) keV for the former. This feature is reproduced by Shell Model (SM) calculations, using the - valence space, predicting an almost pure intruder nature for the 0 state, with two protons (neutrons) being excited across the =20 magic closure in Ca (S). This mirror system has the largest MEDs ever observed, if one excludes the few cases induced by the effect of the continuum.
Keywords
Cite
@article{arxiv.2201.01513,
title = {The structure of $^{36}$Ca under the Coulomb magnifying glass},
author = {L. Lalanne and O. Sorlin and A. Poves and M. Assié and F. Hammache and S. Koyama and F. Flavigny and V. Girard-Alcindor and A. Lemasson and A. Matta and T. Roger and D. Beaumel and Y Blumenfeld and B. A. Brown and F. De Oliveira Santos and F. Delaunay and N. de Séréville and S. Franchoo and J. Gibelin and J. Guillot and O. Kamalou and N. Kitamura and V. Lapoux and B. Mauss and P. Morfouace and M. Niikura and J. Pancin and T. Y. Saito and D. Suzuki and C. Stodel and J-C. Thomas},
journal= {arXiv preprint arXiv:2201.01513},
year = {2022}
}
Comments
Paper of 5 pages, 3 figures. Contains also a supplementary material of 3 pages and 4 figures