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Maximal neutron star mass and the resolution of hyperon puzzle in modified gravity

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arxiv 1401.4546 v3 pith:CT4375AI submitted 2014-01-18 gr-qc hep-ph

Maximal neutron star mass and the resolution of hyperon puzzle in modified gravity

classification gr-qc hep-ph
keywords hyperonneutrongravitymodifiedstateequationmassmaximal
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The so-called hyperon puzzle in the theory of neutron stars is considered in the framework of modified $f(R)$ gravity. We show that for simple hyperon equations of state, it is possible to obtain the maximal neutron star mass which satisfies the recent observational data for PSR J1614-2230, in higher-derivative models with power-law terms as $f(R) = R+\alpha R^2+ \beta R^3$. The soft hyperon equation of state under consideration is usually treated as non-realistic in the standard General Relativity. The numerical analysis of Mass-Radius relation for massive neutron stars with hyperon equation of state in modified gravity turns out to be consistent with observations. Thus, we show that the same modified gravity can solve at once three problems: consistent description of the maximal mass of neutron star, realistic Mass-Radius relation and account for hyperons in equation of state.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  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.

  2. Testing General Relativity with Present and Future Astrophysical Observations

    gr-qc 2015-01 accept novelty 2.0

    A review summarizing modified theories of gravity, their effects on compact objects, existing bounds from astrophysical observations, and the promise of future gravitational wave tests for strong-field gravity.