English

Nuclear matter properties and neutron star structures from an extended linear sigma model

Nuclear Theory 2026-04-20 v2

Abstract

The properties of nuclear matter and the structures of neutron stars are analyzed with a baryonic extended linear sigma model in mean-field approximation, where the masses of baryons and mesons are generated via the spontaneous chiral symmetry breaking. The couplings between the iso-scalar scalar meson and nucleons, gσNNg_{\sigma NN}, the iso-vector scalar meson and nucleons, ga0NNg_{a_0 NN}, and the four-vector meson couplings play an important role in the properties of nuclear matter and neutron stars. The introduction of the δ\delta meson leads to a plateau structure of the symmetry energy, Esym(n)E_{\rm sym}(n), at intermediate densities, which is crucial to the consistency of neutron skin thickness of 208^{208}Pb and the tidal deformability of a canonical neutron star. The explicit chiral symmetry breaking term is then introduced with a constant background field, ξ\xi, which can be related to the current quark mass and thus the pion-nucleon sigma term, σπN\sigma_{\pi N}. A negative σπN\sigma_{\pi N} leads to a stiffer EOS of neutron star matter and thus a larger maximum mass of neutron stars, but the value of σπN\sigma_{\pi N} needed to satisfy the astrophysical constraints is negative, not positive as the vacuum value. The study may provide insights into the running behaviors of the parameters in the low-energy effective model to give the density-dependent description for the EOS of neutron star matter.

Keywords

Cite

@article{arxiv.2603.03849,
  title  = {Nuclear matter properties and neutron star structures from an extended linear sigma model},
  author = {Yao Ma},
  journal= {arXiv preprint arXiv:2603.03849},
  year   = {2026}
}
R2 v1 2026-07-01T11:02:40.311Z