Einstein's cluster mimicking compact star in the teleparallel equivalent of general relativity
Ksh. Newton Singh, Farook Rahaman, Ayan Banerjee

TL;DR
This paper develops Einstein's cluster models within teleparallel gravity and modified f(T) gravity, analyzing their stability, physical properties, and ability to mimic compact stars, revealing limitations in their physical plausibility.
Contribution
The study introduces Einstein's cluster solutions in TEGR and f(T) gravity, assessing their stability and physical viability as compact star mimickers, which was not previously explored.
Findings
Charged solutions increase the stiffness of the EoS.
Solutions violate causality and Buchdahl limit at high charge.
Electric charge enhances stability of Einstein clusters.
Abstract
We present a physically plausible solution representing Einstein's cluster mimicking the behaviors of compact star in the context of teleparallel equivalent of general relativity. The Teleparallel gravity (TEGR) is an alternative formulation of gravity which uses tetrads as the dynamical variables. We focus on two particularly interesting scenarios. First, we develop the Einstein clusters in TEGR field equations using effective energy-momentum tensor for diagonal as well as off-diagonal tetrad. We then study the clusters in modified gravity for anisotropic fluid distribution. Based on these two theories, we further study the solution without net electric charge and then for charged solution. For charge parameter , the charged solution reduces to neutral one. Our calculations show that when charge increases, the stiffness of the EoS also increases. This is due to…
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