Holographic dark energy from the laws of thermodynamics with R\'enyi entropy
Manosh T. Manoharan, N. Shaji, Titus K. Mathew

TL;DR
This paper explores deriving holographic dark energy from thermodynamic laws using Rényi entropy, showing it can behave like a cosmological constant and aligns with both holography and thermodynamics.
Contribution
It introduces a novel approach to generate holographic dark energy from horizon thermodynamics with Rényi entropy, avoiding non-standard interactions.
Findings
Dark energy can be induced as an integration constant from thermodynamics.
Rényi entropy leads to a dynamic holographic dark energy model.
The model reduces to a cosmological constant when Rényi entropy becomes Bekenstein-Hawking entropy.
Abstract
This article investigates the relationship between the holographic principle and the laws of thermodynamics in explaining the late-time acceleration of the universe. First, we explore the possibilities of generating the standard holographic dark energy (SHDE) from the laws of horizon thermodynamics. Except for entropies that follow an exponent stretched area law, unless we redefine the horizon temperature, we found it challenging to construct a one-to-one correspondence between the dark energies defined by the holographic principle and the laws of thermodynamics. Secondly, in SHDE models, unless we invoke some phenomenological interactions, it is impossible to explain the late-time cosmic acceleration with the Hubble horizon as the IR cutoff. On the other hand, it is possible to induce dark energy as an integration constant using the laws of thermodynamics on the Hubble horizon. These…
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Taxonomy
TopicsCosmology and Gravitation Theories · Advanced Thermodynamics and Statistical Mechanics · Solar and Space Plasma Dynamics
