Implication of f(โ„›,โ„’m,๐’ฏ ) gravity on the anisotropic compact stars and mass-radius relations under NICER radii measurements of PSR J0740+6620

In this work, we have investigated the consequences happen to a configuration of a neutron star when gravity itself is modified by a non-minimal coupling between matter and geometry. Particularly, we explore a new exact analytical solution for anisotropic compact stars using the Buchdahl metric potential within [Formula: see text] gravity. The present model reveals a remarkable hydrostatic equilibrium where the inward gravitational pull is counterbalanced not only by pressure gradients and anisotropy but also by a novel curvature-matter coupling force. The predicted central energy densities range from [Formula: see text] to [Formula: see text], while central pressures span [Formula: see text] to [Formula: see text]. Stability of the stellar configuration is assured with adiabatic indices [Formula: see text] to [Formula: see text] exceeding the [Formula: see text] threshold, sound speeds [Formula: see text], and the cracking condition satisfied throughout. Remarkably, mass-radius relation presented in the present model predicts radii of PSR J1903+327, PSR J0740+6620, PSR J1614-2230 and PSR J2215+5135. We obtain radius of PSR J0740+6620 to be [Formula: see text] km for mass [Formula: see text] based on the data obtained from the [Formula: see text] curves restricting the [Formula: see text] parameters space so that central density is of the order of [Formula: see text] for the sustainability of high mass in the massive pulsars. The present model predictions are in good agreement with the lower bounds of the observed radii values of PSR J0740+6620 by the recent NICER measurements. The current findings establish [Formula: see text] gravity as a compelling framework for describing compact astrophysical objects, providing a robust foundation for future multimessenger tests of strong-field gravity.

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Journal
International Journal of Geometric Methods in Modern Physics
Published
2026-10-06
DOI
https://doi.org/10.1142/s0219887827500071
Primary Topic
Pulsars and Gravitational Waves Research
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article
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article

Implication of f(โ„›,โ„’m,๐’ฏ ) gravity on the anisotropic compact stars and mass-radius relations under NICER radii measurements of PSR J0740+6620

Akram Ali, Baiju Dayanandan, Ali Hassan Siddiq Alkhaldi, Abdul Aziz et al.
International Journal of Geometric Methods in Modern Physics
Pulsars and Gravitational Waves Research
article

Implication of f(โ„›,โ„’m,๐’ฏ ) gravity on the anisotropic compact stars and mass-radius relations under NICER radii measurements of PSR J0740+6620

Akram Ali, Baiju Dayanandan, Ali Hassan Siddiq Alkhaldi, Abdul Aziz, S. K. Maurya, A. Errehymy
article en

Abstract

In this work, we have investigated the consequences happen to a configuration of a neutron star when gravity itself is modified by a non-minimal coupling between matter and geometry. Particularly, we explore a new exact analytical solution for anisotropic compact stars using the Buchdahl metric potential within [Formula: see text] gravity. The present model reveals a remarkable hydrostatic equilibrium where the inward gravitational pull is counterbalanced not only by pressure gradients and anisotropy but also by a novel curvature-matter coupling force. The predicted central energy densities range from [Formula: see text] to [Formula: see text], while central pressures span [Formula: see text] to [Formula: see text]. Stability of the stellar configuration is assured with adiabatic indices [Formula: see text] to [Formula: see text] exceeding the [Formula: see text] threshold, sound speeds [Formula: see text], and the cracking condition satisfied throughout. Remarkably, mass-radius relation presented in the present model predicts radii of PSR J1903+327, PSR J0740+6620, PSR J1614-2230 and PSR J2215+5135. We obtain radius of PSR J0740+6620 to be [Formula: see text] km for mass [Formula: see text] based on the data obtained from the [Formula: see text] curves restricting the [Formula: see text] parameters space so that central density is of the order of [Formula: see text] for the sustainability of high mass in the massive pulsars. The present model predictions are in good agreement with the lower bounds of the observed radii values of PSR J0740+6620 by the recent NICER measurements. The current findings establish [Formula: see text] gravity as a compelling framework for describing compact astrophysical objects, providing a robust foundation for future multimessenger tests of strong-field gravity.

International Journal of Geometric Methods in Modern Physics
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Pulsars and Gravitational Waves Research
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