English

Hyperon stars in the Brueckner-Bethe-Goldstone theory

Nuclear Theory 2009-07-09 v1 Astrophysics

Abstract

In the framework of the Brueckner-Bethe-Goldstone theory, we determine a fully microscopic equation of state for asymmetric and β\beta-stable nuclear matter containing \sim and \la\la hyperons. We use the Paris and the new Argonne Av18Av_{18} two-body nucleon interaction, whereas the nucleon-hyperon interaction is described by the Njimegen soft-core model. We stress the role played by the three-body nucleon interaction, which produces a strong repulsion at high densities. This enhances enormously the hyperon population, and produces a strong softening of the equation of state, which turns out almost independent on the nucleon-nucleon interaction. We use the new equation of state in order to calculate the structure of static neutron stars. We obtain a maximum mass configuration with MmaxM_{\rm max} = 1.26 (1.22) when the Paris (Av18Av_{18}) nucleon potential is adopted. Central densities are about 10 times normal nuclear matter density. Stellar rotations, treated within a perturbative approach, increase the value of the limiting mass by about 12%.

Keywords

Cite

@article{arxiv.nucl-th/9912066,
  title  = {Hyperon stars in the Brueckner-Bethe-Goldstone theory},
  author = {M. Baldo and G. F. Burgio and H. -J. Schulze},
  journal= {arXiv preprint arXiv:nucl-th/9912066},
  year   = {2009}
}

Comments

16 pages, latex, 10 figures, submitted to Phys. Rev. C