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Probing Dark Energy Properties with Barrow Holographic Model in f(Q, C) Gravity

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arxiv 2411.18911 v1 pith:NPCOZOT7 submitted 2024-11-28 gr-qc

Probing Dark Energy Properties with Barrow Holographic Model in f(Q, C) Gravity

classification gr-qc
keywords energymodeldarkgravitybarrowbhdeparameterboundary
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Understanding the accelerating expansion of the universe remains one of the foremost challenges in modern cosmology. This study investigates Barrow Holographic Dark Energy (BHDE), a model inspired by quantum gravitational corrections, within the framework of \(f(Q,C)\) gravity. This extension of symmetric teleparallel gravity incorporates the non-metricity scalar \(Q\) and the boundary term \(C\), enabling a deeper exploration of cosmic dynamics without relying on a cosmological constant or exotic matter. The BHDE model is analyzed under a flat Friedmann-Robertson-Walker (FRW) metric, focusing on key cosmological parameters such as energy density, isotropic pressure, the equation of state (EoS) parameter, stability conditions and the energy conditions. The results demonstrate that the EoS parameter transitions from matter-like behavior (\(z > 0\)) to negative values at \(z = 0\), indicating the dominance of dark energy and its role in the universe's accelerated expansion. As \(z\) approaches \(-1\), the EoS parameter asymptotically converges to \(-1\), aligning with the \(\Lambda\)CDM model. This work underscores the potential of the BHDE model in \(f(Q,C)\) gravity as a comprehensive framework for studying cosmic acceleration. By incorporating Barrow entropy and addressing the interplay between non-metricity and boundary terms, the model provides a dynamic approach to explaining dark energy.

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Cited by 2 Pith papers

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  1. Hints Beyond $\Lambda$CDM from Barrow and Tsallis Holographic Dark Energy with GO cutoff

    gr-qc 2026-01 conditional novelty 5.0

    Barrow holographic dark energy with the Granda-Oliveros cutoff fits current background data as well as ΛCDM and shows a weak AIC preference only for the Union3-based dataset combination.

  2. Barrow holographic dark energy interacting model in the presence of radiation and matter

    gr-qc 2025-07 unverdicted novelty 4.0

    Numerical study of interacting Barrow holographic dark energy in non-flat universes with radiation, showing EoS transitions and higher fitted H0 values that may address Hubble tension.