Influence of three parameters on maximum mass and stability of strange star under linear $f(Q)-$action
Santosh V. Lohakare, S.K. Maurya, Ksh. Newton Singh, B.Mishra,, Abdelghani Errehymy

TL;DR
This paper investigates the effects of three parameters on the maximum mass and stability of strange stars within $f(Q)$ gravity, employing gravitational decoupling and the MIT bag model, and compares results with observational data.
Contribution
It introduces a novel analysis of strange star stability in $f(Q)$ gravity using the CGD technique and explores parameter effects on mass gap and observational consistency.
Findings
Models exhibit stable mass profiles and internal regularity.
Adjusting parameters achieves a lower mass gap component.
Models satisfy physical viability and stability criteria.
Abstract
This study simulates strange stars in gravity with an additional source under an electric field using gravitational decoupling and the complete Gravitational Decoupling (CGD) technique. By employing the Tolman ansatz and the MIT bag model equation of state (EOS), we explore bounded star configurations derived from the and sectors within the CGD formalism. Our models are subjected to physical viability tests, and we analyze the impact of anisotropy and the electric charge parameter as well as the coupling parameters and . Comparisons are made with observational constraints, including GW190814, neutron stars PSR J1614-2230, PSR J1903+6620, Cen X-3 and LMC X-4. Notably, we achieve the presence of a lower "\textit{mass gap}" component by adjusting parameters and . Our models exhibit well-behaved mass…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Cosmology and Gravitation Theories · Geophysics and Gravity Measurements
