Quasinormal modes of slowly-rotating black holes in dynamical Chern-Simons gravity
Pratik Wagle, Nicolas Yunes, Hector O. Silva

TL;DR
This paper investigates the quasinormal modes of slowly-rotating black holes in dynamical Chern-Simons gravity, providing numerical results and stability analysis to aid future gravitational wave tests of this modified gravity theory.
Contribution
It introduces a leading-order spin analysis of black hole perturbations in dynamical Chern-Simons gravity, including numerical calculations of quasinormal modes and stability evidence.
Findings
Black holes in this theory are linearly stable.
Numerical quasinormal mode frequencies are tabulated.
Fitting functions relate modes to spin and coupling parameters.
Abstract
The detection of gravitational waves from compact binary mergers by the LIGO/Virgo collaboration has, for the first time, allowed us to test relativistic gravity in its strong, dynamical and nonlinear regime, thus opening a new arena to confront general relativity (and modifications thereof) against observations. We consider a theory which modifies general relativity by introducing a scalar field coupled to a parity-violating curvature term known as dynamical Chern-Simons gravity. In this theory, spinning black holes are different from their general relativistic counterparts and can thus serve as probes to this theory. We study linear gravito-scalar perturbations of black holes in dynamical Chern-Simons gravity at leading-order in spin and (i) obtain the perturbed field equations describing the evolution of the perturbed gravitational and scalar fields, (ii) numerically solve these…
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