English

Coulomb-nuclear dynamics in the weakly-bound 8Li breakup

Nuclear Theory 2022-02-16 v1

Abstract

A detailed study of total, Coulomb and nuclear breakup cross sections dependence on the projectile ground-state binding energy εb\varepsilon_b is presented, by considering the 8^8Li+12^{12}C and 8^8Li+208^{208}Pb breakup reactions. To this end, apart from the experimental one-neutron separation energy of 8^8Li nucleus (εb=2.03\varepsilon_b=2.03~MeV), lower values of εb\varepsilon_b down to εb=0.01\varepsilon_b=0.01~MeV, are also being considered. It is shown that all breakup processes become peripheral as εb0.01\varepsilon_b\to 0.01 MeV, which is understood as due to the well-known large spacial extension of ground-state wave functions associated to weakly-bound projectiles. The Coulomb breakup cross section is found to be more strongly dependent on εb\varepsilon_b than the nuclear breakup cross section, such that the Coulomb breakup becomes more significant as εb\varepsilon_b decreases, even in a naturally nuclear-dominated reaction. This is mainly due to the long-range nature of the Coulomb forces, leading to a direct dependence of the Coulomb breakup on the electromagnetic transition matrix. It is also highlighted the fact that the nuclear absorption plays a minor role for small binding when the breakup becomes more peripheral.

Keywords

Cite

@article{arxiv.2201.12694,
  title  = {Coulomb-nuclear dynamics in the weakly-bound 8Li breakup},
  author = {Bahati Mukeru and Jesus Lubian and Lauro Tomio},
  journal= {arXiv preprint arXiv:2201.12694},
  year   = {2022}
}

Comments

12 pages, 11 figures

R2 v1 2026-06-24T09:09:01.704Z