Reconciling the Weak Gravity and Weak Cosmic Censorship Conjectures in Einstein-Euler-Heisenberg-AdS Black Holes

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Main Authors: Alipour, Mohammad Reza, Gashti, Saeed Noori, Pourhassan, Behnam, Sakallı, İzzet
Format: Preprint
Published: 2025
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author Alipour, Mohammad Reza
Gashti, Saeed Noori
Pourhassan, Behnam
Sakallı, İzzet
author_facet Alipour, Mohammad Reza
Gashti, Saeed Noori
Pourhassan, Behnam
Sakallı, İzzet
contents The potential conflict between the Weak Gravity Conjecture (WGC) and the Weak Cosmic Censorship Conjecture (WCCC) poses a significant challenge in general relativity. The WCCC serves as a fundamental assumption ensuring the coherence of gravitational theory. This study investigates the reconciliation of the WGC and the WCCC by examining Einstein-Euler-Heisenberg-AdS black holes in four-dimensional spacetime. By imposing specific constraints on the metric parameters, we demonstrate that the WGC and the WCCC can coexist harmoniously. Detailed analyses of Einstein-Euler-Heisenberg-AdS black holes for \( Q > M \) validate the simultaneous fulfillment of the two conjectures, particularly in scenarios where \( q^2/m^2 \geq \left(Q^2 / M^2\right)_{\text{e}} \). The electromagnetic self-interaction parameter \( μ\) plays a crucial role in achieving this compatibility. Our findings establish that Einstein-Euler-Heisenberg-AdS black holes provide a robust framework for harmonizing the WGC and the WCCC. In particular, for exceedingly small values of ($μ$)-or, equivalently, when the condition ($μ\ll \ell$) is satisfied-the structure of our black hole transitions in a way that distinctly reveals its compatibility with the WGC. This study also explores the compatibility of the WGC and the WCCC with photon spheres. It examines parameter spaces that satisfy both conjectures, ensuring event horizons and photon spheres while maintaining black hole properties. Key results demonstrate that small \( μ\) values preserve WCCC adherence and validate WGC through photon sphere characteristics.
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id arxiv_https___arxiv_org_abs_2504_03453
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Reconciling the Weak Gravity and Weak Cosmic Censorship Conjectures in Einstein-Euler-Heisenberg-AdS Black Holes
Alipour, Mohammad Reza
Gashti, Saeed Noori
Pourhassan, Behnam
Sakallı, İzzet
General Relativity and Quantum Cosmology
High Energy Physics - Theory
The potential conflict between the Weak Gravity Conjecture (WGC) and the Weak Cosmic Censorship Conjecture (WCCC) poses a significant challenge in general relativity. The WCCC serves as a fundamental assumption ensuring the coherence of gravitational theory. This study investigates the reconciliation of the WGC and the WCCC by examining Einstein-Euler-Heisenberg-AdS black holes in four-dimensional spacetime. By imposing specific constraints on the metric parameters, we demonstrate that the WGC and the WCCC can coexist harmoniously. Detailed analyses of Einstein-Euler-Heisenberg-AdS black holes for \( Q > M \) validate the simultaneous fulfillment of the two conjectures, particularly in scenarios where \( q^2/m^2 \geq \left(Q^2 / M^2\right)_{\text{e}} \). The electromagnetic self-interaction parameter \( μ\) plays a crucial role in achieving this compatibility. Our findings establish that Einstein-Euler-Heisenberg-AdS black holes provide a robust framework for harmonizing the WGC and the WCCC. In particular, for exceedingly small values of ($μ$)-or, equivalently, when the condition ($μ\ll \ell$) is satisfied-the structure of our black hole transitions in a way that distinctly reveals its compatibility with the WGC. This study also explores the compatibility of the WGC and the WCCC with photon spheres. It examines parameter spaces that satisfy both conjectures, ensuring event horizons and photon spheres while maintaining black hole properties. Key results demonstrate that small \( μ\) values preserve WCCC adherence and validate WGC through photon sphere characteristics.
title Reconciling the Weak Gravity and Weak Cosmic Censorship Conjectures in Einstein-Euler-Heisenberg-AdS Black Holes
topic General Relativity and Quantum Cosmology
High Energy Physics - Theory
url https://arxiv.org/abs/2504.03453