Extremal Black Holes in Dynamical Chern-Simons Gravity
Robert McNees, Leo C. Stein, and Nicol\'as Yunes

TL;DR
This paper derives analytic extremal rotating black hole solutions in dynamical Chern-Simons gravity, providing insights into deviations from general relativity and developing techniques for solutions with arbitrary spin.
Contribution
It presents the first closed-form analytic expressions for extremal rotating black holes in dynamical Chern-Simons gravity, including scalar and metric perturbations.
Findings
Analytic extremal scalar field solutions are obtained.
Metric perturbation trace is expressed with Legendre modes, achieving over 99% accuracy with few modes.
A logarithmic divergence at the horizon is identified, likely unphysical.
Abstract
Rapidly rotating black hole solutions in theories beyond general relativity play a key role in experimental gravity, as they allow us to compute observables in extreme spacetimes that deviate from the predictions of general relativity. Such solutions are often difficult to find in beyond-general-relativity theories due to the inclusion of additional fields that couple to the metric non-linearly and non-minimally. In this paper, we consider rotating black hole solutions in one such theory, dynamical Chern-Simons gravity, where the Einstein-Hilbert action is modified by the introduction of a dynamical scalar field that couples to the metric through the Pontryagin density. We treat dynamical Chern-Simons gravity as an effective field theory and work in the decoupling limit, where corrections are treated as small perturbations from general relativity. We perturb about the maximally-rotating…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Pulsars and Gravitational Waves Research · Cosmology and Gravitation Theories
