Comparative Analysis of Holographic Dark Energy Models in $f(R,T^2)$ Gravity
M. Sharif, M. Zeeshan Gul, I. Hashim

TL;DR
This paper explores various holographic dark energy models within $f(R,T^2)$ gravity, analyzing their stability and ability to describe the universe's accelerated expansion, using different horizons as infrared cut-offs.
Contribution
It reconstructs $f(R,T^2)$ gravity models based on holographic dark energy formulations and examines their stability and cosmological implications.
Findings
Models describe both phantom and quintessence phases.
Reconstructed models align with observed cosmic acceleration.
Stability analysis confirms robustness of models.
Abstract
This study investigates the Renyi Holographic dark energy, Sharma-Mittal Holographic dark energy and Generalized Holographic dark energy models in the framework of gravity, where denotes the Ricci scalar and represents the self-contraction of the stress-energy tensor. For this purpose we employed two horizons as infrared cut-offs, such as Hubble horizon and Ricci horizon. The analysis is conducted for a non-interacting scenario in a spatially flat Friedmann-Robertson-Walker universe. By considering a specific form of this modified gravity, we reconstruct the corresponding gravitational models based on these selected dark energy formulations. Additionally, a stability analysis is performed for all cases and the evolution of the equation of state parameter is examined. Our finding indicates that the reconstructed models effectively describe both the phantom…
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Taxonomy
TopicsCosmology and Gravitation Theories · Black Holes and Theoretical Physics · Noncommutative and Quantum Gravity Theories
