Non-extensive Entropy and Holographic Thermodynamics: Topological Insights
Saeed Noori Gashti, and B. Pourhassan

TL;DR
This paper explores the topological thermodynamics of AdS black holes using non-extensive entropy formulations, revealing how different parameters influence topological charges and classifications across two thermodynamic frameworks.
Contribution
It introduces a comprehensive analysis of topological charges in black hole thermodynamics using Barrow, Rényi, and Sharma-Mittal entropies within bulk boundary and RPS frameworks, highlighting parameter effects.
Findings
Topological charges depend on non-extensive parameters in bulk boundary framework.
RPS framework shows consistent topological behavior with a total charge of +1.
Varying non-extensive parameters alters topological classifications and charges.
Abstract
In this paper, we delve into the thermodynamic topology of AdS Einstein-Gauss-Bonnet black holes, employing non-extensive entropy formulations such as Barrow, R\'enyi, and Sharma-Mittal entropy within two distinct frameworks: bulk boundary and restricted phase space (RPS) thermodynamics. Our findings reveal that in the bulk boundary framework, the topological charges, are influenced by the free parameters and the Barrow non-extensive parameter . So, we faced three topological charges . When the parameter increases to 0.9, the classification changes, resulting in two topological charges . When is set to zero, the equations reduce to the Bekenstein-Hawking entropy structure, yielding consistent results with three topological charges. Additionally, setting the non-extensive parameter in R\'enyi entropy to zero…
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Taxonomy
TopicsAdvanced Thermodynamics and Statistical Mechanics · Statistical Mechanics and Entropy
