Magnetic and Electric Black Holes in the Vector-Tensor Horndeski Theory
Y. Verbin

TL;DR
This paper presents exact magnetically charged black hole solutions in vector-tensor Horndeski gravity, revealing unique features like repulsive gravity and horizon structures, with comprehensive analysis of their properties and particle trajectories.
Contribution
It provides the first analytical solutions for magnetically charged black holes in Horndeski gravity, including effects of non-minimal coupling and comparison with electric black holes.
Findings
Existence of extremal black holes with maximal magnetic charge
Black holes with a repulsive gravitational field
Differences between positive and negative coupling constant cases
Abstract
We construct exact solutions of magnetically charged black holes in the vector-tensor Horndeski gravity and discuss their main features. Unlike the analogous electric case, the field equations are linear in a simple (quite standard) parametrization of the metric tensor and they can be solved analytically even when a cosmological constant is added. The solutions are presented in terms of hypergeometric functions which makes the analysis of the black hole properties relatively straightforward. Some of the aspects of these black holes are quite ordinary like the existence of extremal configurations with maximal magnetic charge for a given mass, or the existence of a mass with maximal temperature for a given charge, but others are somewhat unexpected, like the existence of black holes with a repulsive gravitational field. We perform our analysis for both signs of the non-minimal coupling…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Astrophysical Phenomena and Observations · Pulsars and Gravitational Waves Research
