ONE-NEUTRON HALO DEVELOPMENT IN BERYLLIUM ISOTOPES IN A SELFCONSISTENT STUDY USING THE SKYRME-HARTREE-FOCK MODEL

Authors

  • Raden Oktova Physics Education Department, Ahmad Dahlan University Campus III, Jalan Soepomo, Yogyakarta 55161, Indonesia

DOI:

https://doi.org/10.12928/bfi-jifpa.v6i1.353

Abstract

The one-neutron halo effect development in beryllium isotopes has been studied self-consistently using the Skyrme-Hartree-Fock model, covering mass numbers A= 7-12. The Zσ, SkM*, and SkIII parameter sets have been used to calculate the charge density distributions. The calculations show a systematic decrease in
rms charge radius from A = 7 to 10 and an increase from A= 10 to 12, in agreement with recent experimental data.

Keywords: beryllium isotopes, charge density distribution, one-neutron halo, self-consistent calculation, Skyrme-Hartree-Fock model.

Author Biography

Raden Oktova, Physics Education Department, Ahmad Dahlan University Campus III, Jalan Soepomo, Yogyakarta 55161, Indonesia

Physics Education Department, Ahmad Dahlan University
Campus III, Jalan Soepomo, Yogyakarta 55161, Indonesia

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