Distinctive Features of Hairy Black Holes in Teleparallel Gauss-Bonnet Gravity
Sebastian Bahamonde, Daniela D. Doneva, Ludovic Ducobu, Christian, Pfeifer, Stoytcho S. Yazadjiev

TL;DR
This paper explores how torsion in teleparallel gravity allows for new scalarized black hole solutions in Einstein-Gauss-Bonnet theory, revealing potential stability in cases unstable in curvature-based models.
Contribution
It introduces scalarized black hole solutions in teleparallel Gauss-Bonnet gravity and shows torsion can influence their stability, especially for quadratic couplings.
Findings
Scalarized black holes emerge with complex tetrads.
Torsion can stabilize solutions unstable in curvature formulations.
Black holes with strong scalar fields but zero scalar charge are found.
Abstract
We examine the teleparallel formulation of non-minimally coupled scalar Einstein-Gauss-Bonnet gravity. In the teleparallel formulation, gravity is described by torsion instead of curvature, causing the usual Gauss-Bonnet invariant expressed through curvature to decay into two separate invariants built from torsion. Consequently, the teleparallel formulation permits broader possibilities for non-minimal couplings between spacetime geometry and the scalar field. In our teleparallel theory, there are two different branches of equations in spherical symmetry depending on how one solves the antisymmetric part of the field equations, leading to a real and a complex tetrad. We first show that the real tetrad seems to be incompatible with the regularity of the equations at the event horizon, which is a symptom that scalarized black hole solutions beyond the Riemannian Einstein-Gauss-Bonnet…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Cosmology and Gravitation Theories · Noncommutative and Quantum Gravity Theories
