Black-hole ringdown as a probe of higher-curvature gravity theories
Hector O. Silva, Abhirup Ghosh, Alessandra Buonanno

TL;DR
This paper develops a waveform model to analyze black-hole ringdown signals, enabling constraints on higher-curvature gravity theories using gravitational wave data from LIGO-Virgo events.
Contribution
It introduces a parametrized waveform model incorporating theory-specific quasinormal modes for testing higher-curvature gravity theories with gravitational waves.
Findings
Upper bounds on cubic- and quartic-order EFT lengthscales
No constraints on Einstein-dilaton-Gauss-Bonnet theory from current data
Demonstrates merger-ringdown analysis can constrain theories beyond inspiral-only methods
Abstract
Detecting gravitational waves from coalescing compact binaries allows us to explore the dynamical, nonlinear regime of general relativity and constrain modifications to it. Some of the gravitational-wave events observed by the LIGO-Virgo Collaboration have sufficiently high signal-to-noise ratio in the merger, allowing us to probe the relaxation of the remnant black hole to its final, stationary state - the so-called black-hole ringdown, which is characterized by a set of quasinormal modes. Can we use the ringdown to constrain deviations from general relativity, as predicted by several of its contenders? Here, we address this question by using an inspiral-merger-ringdown waveform model in the effective-one-body formalism, augmented with a parametrization of the ringdown based on an expansion in the final black hole's spin. We give a prescription on how to include in this waveform model,…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Astrophysical Phenomena and Observations · Geophysics and Sensor Technology
