English

Neutron stars within relativistic central variational method

Nuclear Theory 2017-03-08 v1

Abstract

The properties of neutron stars are investigated within the relativistic central variational method by using a realistic nucleon-nucleon (NNNN) interaction. The strong repulsion of realistic NNNN interactions at short distances is treated by a Jastrow central correlation function, whose form is completely determined through minimization of the total energy of the nuclear many-body system. The relativistic Hartree-Fock wave functions are chosen as the trial wave function. In this framework, the equation of state of the neutron star matter in β\beta equilibrium is obtained self-consistently. We further determine the properties of neutron stars via the Tolman-Oppenheimer-Volkoff equation using Bonn A, B, and C potentials. The maximum masses of neutron stars with these realistic potentials are around 2.18M2.18 M_\odot and their corresponding radii are around 1111 km. These results are in accordance with the calculations of the relativistic Brueckner-Hartree-Fock theory with the same potentials. Furthermore, we also find that the splitting of proton-neutron effective masses will be reversed at high density in the neutron star matter, which are caused by the contribution of short-range correlation on kinetic energy.

Keywords

Cite

@article{arxiv.1701.06025,
  title  = {Neutron stars within relativistic central variational method},
  author = {Jinniu Hu and Hong Shen and Hiroshi Toki},
  journal= {arXiv preprint arXiv:1701.06025},
  year   = {2017}
}

Comments

19 pages, 8 figures, 1 table, accepted to Phys. Rev. C

R2 v1 2026-06-22T17:55:56.047Z