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arXiv · 2607.07736

Deformed Compact Objects in General Relativity and Modified Gravity

Abstract

Neutron stars and related compact objects are unique laboratories for probing matter at supranuclear densities and gravity in the strong-field regime. In this thesis, we investigate the hydrostatic equilibrium of compact stars in different geometric and gravitational scenarios, combining relativistic stellar structure, dense-matter microphysics, and numerical modeling. We derive the standard Tolman-Oppenheimer-Volkoff equation in General Relativity, introduce an effective one-parameter deformation scheme leading to the deformed TOV (D-TOV) formalism, and extend the hydrostatic equilibrium framework to f(R,T) gravity. Using these structure equations, we compute equilibrium sequences for neutron stars and strange stars described by the GM1 equation of state, the MIT Bag Model, and a polytropic equation of state. In General Relativity, the deformation parameter D significantly affects the global stellar properties: oblate configurations generally support larger masses and radii than the spherical case, while prolate configurations lead to less massive and more compact stars. In optimized and linear f(R,T) models, trace-dependent matter-geometry couplings further modify the mass-radius relation and the maximum supported mass. Overall, the results indicate that effective deformation and trace-dependent matter-geometry coupling can significantly affect the equilibrium structure of compact stars.

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BibTeXRIS

Jonathan Tejeda Quartuccio. 2026-07-07. Deformed Compact Objects in General Relativity and Modified Gravity. https://arxiv.org/abs/2607.07736

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