Unveiling a universal relationship between the f(R) parameter and neutron star properties
arXiv:2306.01054 · doi:10.1103/PhysRevD.107.124045
Abstract
In recent years, modified gravity theories have gained significant attention as potential replacements for the general theory of relativity. Neutron stars, which are dense compact objects, provide ideal astrophysical laboratories for testing these theories. However, understanding the properties of neutron stars within the framework of modified gravity theories requires careful consideration of the presently known uncertainty of equations of state (EoS) that describe the behavior of matter at extreme densities. In this study, we investigate three realistic EoS generated using a relativistic mean field framework, which covers the currently known uncertainties in the stiffness of neutron star matter. We then employ a Bayesian approach to statistically analyze the posterior distribution of the free parameter of the gravity model, specifically . By using this approach, we are able to account for our limited understanding of the interiors of neutron stars as well as the uncertainties associated with the modified gravity theory. We impose observational constraints on our analysis, including the maximum mass, and the radius of a neutron star with a mass of and , which are obtained from X-ray NICER observations. By considering these constraints, we are able to robustly investigate the relationship between the gravity model parameter and the maximum mass of neutron stars. Our results reveal a universality relationship between the gravity model parameter and the maximum mass of neutron stars. This relationship provides insights into the behavior of neutron stars in modified gravity theories and helps us understand the degeneracies arising from our current limited knowledge of the interiors of neutron stars and the free parameter of the modified gravity theory.
10 pages, 7 figures, 3 tables
References in corpus (10)
- PSR J0030+0451 Mass and Radius from NICER Data and Implications for the Properties of Neutron Star Matter
- A NICER View of PSR J0030+0451: Millisecond Pulsar Parameter Estimation
- Building relativistic mean field models for finite nuclei and neutron stars
- A NICER view of PSR J0030+0451: Implications for the dense matter equation of state
- Equation of State for Nucleonic and Hyperonic Neutron Stars with Mass and Radius Constraints
- Structure of neutron stars in R-squared gravity
- Massive Neutron Stars with Antikaon Condensates in a Density Dependent Hadron Field Theory
- Phase Transitions in Neutron Stars
- Neutron Stars in frames of -gravity and Gravitational Waves
- Revisiting compact star in gravity: Roles of chameleon potential and energy conditions