English

Relativistic parameterizations of neutron matter and implications for neutron stars

High Energy Astrophysical Phenomena 2018-12-19 v2 Nuclear Theory

Abstract

We construct parameter sets of the relativistic mean-field model fitted to the recent constraints on the asymmetry energy JJ and the slope parameter LL for pure neutron matter. We find cases of unphysical behaviour, i.e.\ the appearance of negative pressures, for stiff parameter sets with low values of the effective mass m/mm^*/m. In some cases the equation of state of pure neutron matter turns out to be outside the allowed band given by chiral effective field theory. The mass-radius relations of neutron stars for all acceptable parameter sets shows a maximum mass in excess of 2M2M_\odot being compatible with pulsar mass measurements. Given the constraints on the model in the low-density regime coming from chiral effective theory, we find that the radius of a 1.4M1.4M_\odot neutron star is nearly independent on the value of LL. This is in contrast to some previous claims for a strong connection of the slope parameter with the radius of a neutron star. In fact, the mass-radius relation turns out to depend only on the isoscalar parameters of symmetric matter. The constraints of GW170817 on the tidal deformability and on the radius are also discussed.

Keywords

Cite

@article{arxiv.1808.06808,
  title  = {Relativistic parameterizations of neutron matter and implications for neutron stars},
  author = {Nadine Hornick and Laura Tolos and Andreas Zacchi and Jan-Erik Christian and Jürgen Schaffner-Bielich},
  journal= {arXiv preprint arXiv:1808.06808},
  year   = {2018}
}

Comments

11 pages, 7 figures