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The mass-radius relation for neutron stars in f(R)=R+α R² gravity: a comparison between purely metric and torsion formulations

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arxiv 1909.08847 v2 pith:7M7ME3KN submitted 2019-09-19 astro-ph.HE gr-qchep-th

The mass-radius relation for neutron stars in f(R)=R+α R² gravity: a comparison between purely metric and torsion formulations

classification astro-ph.HE gr-qchep-th
keywords alphametricgravitymassneutrontheorytorsioncompactness
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Within the framework of $f(R)=R+\alpha R^2$ gravity, we study realistic models of neutron stars, using equations of state compatible with the LIGO constraints. i.e. APR4, MPA1, SLy, and WW1. By numerically solving modified Tolman-Oppenheimer-Volkoff equations, we investigate the Mass--Radius relation in both metric and torsional $f(R)=R+\alpha R^2$ gravity models. In particular, we observe that torsion effects decrease the compactness and total mass of neutron star with respect to the General Relativity predictions, therefore mimicking the effects of a repulsive massive field. The opposite occurs in the metric theory, where mass and compactness increase with $\alpha$, thus inducing an excess of mass that overtakes the standard General Relativity limit. We also find that the sign of $\alpha$ must be reversed whether one considers the metric theory (positive) or torsion (negative) to avoid blowing up solutions. This could draw an easy test to either confirm or discard one or the other theory by determining the sign of parameter $\alpha$.

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Cited by 1 Pith paper

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  1. Gravitational wave echoes as probes of the maximum mass of strange stars in quadratic curvature-matter coupled gravity

    gr-qc 2026-07 reject novelty 5.0

    In f(R+αR²,T) gravity with tuned parameters, MIT-bag strange stars can exceed the compactness needed for photon spheres and would produce kHz gravitational-wave echoes.