Three-body coupled channel framework for two-neutron halo nuclei
Abstract
We study the Borromean nuclei formed by a core nucleus and two neutrons in a nonrelativistic effective field theory formalism considering both neutron-neutron and neutron-core interactions. We provide formulae of the charge and matter radii, and successfully reproduce the universal relation proposed by Hongo and Son based on the approximation of an infinite neutron-neutron scattering length and neglecting the neutron-core scattering. Once the realistic finite neutron-neutron and neutron-core scattering lengths are used, the charge and matter radii are influenced by the neutron-core channel in a growingly relevant manner. We obtain a relation among the binding energy of the three-body Borromean system, the ratio between charge and matter radii, and the ratio between the neutron-neutron and core-neutron scattering lengths. We find that the two-neutron separation energy for C needs to be keV in order to be consistent with the experimental constraints of the matter radius of C and the -wave scattering length.
Cite
@article{arxiv.2301.07296,
title = {Three-body coupled channel framework for two-neutron halo nuclei},
author = {Jin-Yi Pang and Li-Tan Li and Feng-Kun Guo and Jia-Jun Wu},
journal= {arXiv preprint arXiv:2301.07296},
year = {2023}
}
Comments
26 pages, 14 figures