Neutron radii and semi-phenomenological treatment of neutron distributions for Mg isotopes
Govind Kumar, M. Imran, Z. Hasan, Z. A. Khan
Abstract
Involving the charge radii of Mg isotopes, as calculated using the deformed relativistic Hartree-Bogoliubov theory in continuum (DRHBc), we have extracted the neutron radii of 24-38 Mg isotopes by studying their reaction cross sections (σR) from 12 C at 240 MeV/nucleon within the framework of Glauber model. The calculations use (i) descriptions of nuclei in terms of the Slater determinant involving harmonic oscillator single-particle wave functions (SDHO), and (ii) two-parameter Fermi (2pF) shape of density distribution, with the aim to assess the density dependence of neutron skin in 24-38 Mg isotopes. To understand the asymptotic behavior (spread) of neutron distribution, we propose to introduce the use of core+n (Sn<S2n) or core+2n (Sn>S2n) description for stable as well as unstable isotopes; Sn (S2n) is the one-neutron (two-neutron) separation energy of the considered isotope. The core+n (core+2n) is treated semi-phenomenologically. In this work, the core+n is employed for 25-38 Mg isotopes, and is subjected to reproduce the same neutron radius of the given isotope, as we obtained from σR calculations. To validate the core+n description, we have revisited the reaction cross sections of 25-38 Mg isotopes. The results are found to agree well with the experimental values. Moreover, the core+n neutron distributions clearly demonstrate the one-neutron halo structure of 37 Mg. These findings motivated us to use the core+2n description for the neutron distribution of 40 Mg in predicting its neutron radius, and σR from 12 C at 240 and 1000 MeV/nucleon. The trend of the neutron radius and σR suggests that 40 Mg exhibits two-neutron halo like structure.
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