English

Further stable neutron star models from f(R) gravity

General Relativity and Quantum Cosmology 2015-06-17 v2 Cosmology and Nongalactic Astrophysics High Energy Physics - Theory

Abstract

Neutron star models in perturbative f(R)f(R) gravity are considered with realistic equations of state. In particular, we consider the FPS, SLy and other equations of state and a case of piecewise equation of state for stars with quark cores. The mass-radius relations for f(R)=R+R(eR/R01)f(R)=R+R(e^{-R/R_{0}}-1) model and for R2R^2 models with logarithmic and cubic corrections are obtained. In the case of R2R^2 gravity with cubic corrections, we obtain that at high central densities (ρ>10ρns\rho>10\rho_{ns}, where ρns=2.7×1014\rho_{ns}=2.7\times 10^{14} g/cm3^{3} is the nuclear saturation density), stable star configurations exist. The minimal radius of such stars is close to 99 km with maximal mass 1.9M\sim 1.9 M_{\odot} (SLy equation). A similar situation takes place for AP4 and BSK20 EoS. Such an effect can give rise to more compact stars than in General Relativity. If observationally identified, such objects could constitute a formidable signature for modified gravity at astrophysical level. Another interesting result can be achieved in modified gravity with only a cubic correction. For some EoS, the upper limit of neutron star mass increases and therefore these EoS can describe realistic star configurations (although, in General Relativity, these EoS are excluded by observational constraints).

Keywords

Cite

@article{arxiv.1309.1978,
  title  = {Further stable neutron star models from f(R) gravity},
  author = {Artyom V. Astashenok and Salvatore Capozziello and Sergei D. Odintsov},
  journal= {arXiv preprint arXiv:1309.1978},
  year   = {2015}
}

Comments

18 pages, 17 figures, revised version significally expanded, to appear in JCAP

R2 v1 2026-06-22T01:22:57.731Z