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Topological classes of thermodynamics of the rotating charged AdS black holes in gauged supergravities
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In this paper, we investigate the topological numbers of rotating charged AdS black holes in both four- and five-dimensional gauged supergravity theories. Our analysis is conducted within the framework of the thermodynamical topological approach to black holes, utilizing the generalized off-shell Helmholtz free energy. We demonstrate that the number of rotation parameters plays a significant role in determining the topological numbers of five-dimensional rotating AdS black holes. Moreover, our findings indicate that the topological numbers of both four- and five-dimensional rotating AdS black holes are not influenced by the number of electric charge parameters. This highlights a distinct difference in how rotation and electric charge parameters impact the thermodynamic topological properties of these black holes.
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Cited by 2 Pith papers
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Restricted Phase Space Thermodynamics of 4D Dyonic AdS Black Holes: Insights from Kaniadakis Statistics and Emergence of Superfluid $\lambda$-Phase Transition
Using Kaniadakis entropy in restricted phase space thermodynamics, the authors report a superfluid-lambda-like phase transition and an ultra-large unstable black hole branch for 4D dyonic AdS black holes.
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Topological Insights into Black Hole Thermodynamics: Non-Extensive Entropy in CFT framework
For Gauss-Bonnet-AdS black holes in CFT thermodynamics, the paper reports that hand-chosen Rényi, Sharma-Mittal, and LQG entropy parameters control whether the topological charge is +1 or 0 and whether the phase trans...
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