On the foundations of entropic cosmologies: inconsistencies, possible solutions and dead end signs
Hussain Gohar, Vincenzo Salzano

TL;DR
This paper critically examines entropic cosmology, revealing foundational flaws related to thermodynamic consistency and the mass-to-horizon relation, which undermine the models' ability to accurately describe cosmic dynamics.
Contribution
It identifies key inconsistencies in entropic cosmology models and proposes the need for a thermodynamically consistent framework considering the mass-to-horizon relation.
Findings
All modified entropic force models are equivalent to standard models.
Standard temperature parameterization is thermodynamically inconsistent.
Problems persist in describing cosmological dynamics with current entropic models.
Abstract
In this letter we explore the foundations of entropic cosmology and highlight some important flaws which have emerged and adopted in the recent literature. We argue that, when applying entropy and temperature on the cosmological horizon by assuming the holographic principle for all thermodynamic approaches to cosmology and gravity, one must derive the consistent thermodynamic quantities following Clausius relation. One key assumption which is generally overlooked, is that in this process one must assume a mass-to-horizon relation, which is generally taken as a linear one. We show that, regardless of the type of entropy chosen on the cosmological horizon, when a thermodynamically consistent corresponding temperature is considered, all modified entropic force models are equivalent to and indistinguishable from the original entropic force models based on standard Bekenstein entropy and…
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Taxonomy
TopicsCosmology and Gravitation Theories · Advanced Thermodynamics and Statistical Mechanics · Black Holes and Theoretical Physics
