Transport coefficients of charged Gauss-Bonnet black holes with arbitrary topology

Fuente: arXiv
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Autori principali: Bravo-Gaete, Moisés, Guajardo, Luis, Higuita-Borja, Daniel F., Méndez-Zavaleta, Julio A.
Natura: Preprint
Pubblicazione: 2025
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author Bravo-Gaete, Moisés
Guajardo, Luis
Higuita-Borja, Daniel F.
Méndez-Zavaleta, Julio A.
author_facet Bravo-Gaete, Moisés
Guajardo, Luis
Higuita-Borja, Daniel F.
Méndez-Zavaleta, Julio A.
contents In this study, we present a novel family of exact black hole solutions constructed in the context of five-dimensional Gauss-Bonnet gravity. These solutions add a non-linear charge to the Bañados-Teitelboim-Zanelli-like configurations known to exist with arbitrary Thurston horizon geometry. We establish constraints on the parameter space defining physically viable black holes, aligning with the standard energy conditions. An explicit proof of the first law of thermodynamics within our scenario is provided. We also employ holographic techniques to characterize the DC conductivities for the distinct horizon geometries, identifying a critical temperature indicative of phase transitions and exploring pertinent limits.
format Preprint
id arxiv_https___arxiv_org_abs_2509_03838
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Transport coefficients of charged Gauss-Bonnet black holes with arbitrary topology
Bravo-Gaete, Moisés
Guajardo, Luis
Higuita-Borja, Daniel F.
Méndez-Zavaleta, Julio A.
High Energy Physics - Theory
General Relativity and Quantum Cosmology
In this study, we present a novel family of exact black hole solutions constructed in the context of five-dimensional Gauss-Bonnet gravity. These solutions add a non-linear charge to the Bañados-Teitelboim-Zanelli-like configurations known to exist with arbitrary Thurston horizon geometry. We establish constraints on the parameter space defining physically viable black holes, aligning with the standard energy conditions. An explicit proof of the first law of thermodynamics within our scenario is provided. We also employ holographic techniques to characterize the DC conductivities for the distinct horizon geometries, identifying a critical temperature indicative of phase transitions and exploring pertinent limits.
title Transport coefficients of charged Gauss-Bonnet black holes with arbitrary topology
topic High Energy Physics - Theory
General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2509.03838