Constraining the $f$-mode oscillations frequency in Neutron Stars through Universal Relations in the realm of Energy-Momentum Squared Gravity
Sayantan Ghosh

TL;DR
This paper investigates how Energy-Momentum Squared Gravity influences neutron star properties and uses universal relations to constrain the $f$-mode oscillation frequency based on observational data.
Contribution
It introduces the effects of EMSG on neutron star structure and derives universal relations to connect oscillation frequencies with observable quantities.
Findings
Stiff EOS shows a phase transition at high densities.
Universal relations effectively constrain $f$-mode frequency.
EOS choice impacts the sound speed profile in neutron stars.
Abstract
Neutron stars (NSs), superdense objects with exceptionally strong gravitational fields, provide an ideal laboratory for probing general relativity (GR) in the high-curvature regime. They also present an exciting opportunity to explore new gravitational physics beyond the traditional framework of GR. Thus, investigating alternative theories of gravity in the context of superdense stars is intriguing and essential for advancing our understanding of gravitational phenomena in extreme environments. Energy-Momentum Squared Gravity (EMSG) is a modified theory of gravity that extends GR by including nonlinear terms involving the energy-momentum tensor . This study examines the effects of EMSG on the properties and behaviour of NSs by varying the free parameter . The hydrostatic equilibrium equations in the EMSG framework are derived and solved numerically to obtain…
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Taxonomy
TopicsCosmology and Gravitation Theories · Pulsars and Gravitational Waves Research · Geophysics and Gravity Measurements
