Inspiral-merger-ringdown waveforms in Einstein-scalar-Gauss-Bonnet gravity within the effective-one-body formalism
F\'elix-Louis Juli\'e, Lorenzo Pompili, Alessandra Buonanno

TL;DR
This paper develops the first full inspiral-merger-ringdown gravitational waveform model in Einstein-scalar-Gauss-Bonnet gravity, enabling tests of this theory with current and future gravitational wave observations.
Contribution
It introduces a novel IMR waveform model in a beyond-GR theory, incorporating theory-specific corrections and a method to account for merger morphology uncertainties.
Findings
Placed constraints on the coupling parameter, $ ightarrow 0.31$ km at 90% confidence.
Showed that ringdown frequency shifts are larger than QNM spectrum corrections due to ESGB.
Predicted that next-generation detectors could improve bounds by an order of magnitude.
Abstract
Gravitational waves (GWs) provide a unique opportunity to test General Relativity (GR) in the highly dynamical, strong-field regime. So far, the majority of the tests of GR with GW signals have been carried out following parametrized, theory-independent approaches. An alternative avenue consists in developing inspiral-merger-ringdown (IMR) waveform models in specific beyond-GR theories of gravity, by combining analytical and numerical-relativity results. In this work, we provide the first example of a full IMR waveform model in a beyond-GR theory, focusing on Einstein-scalar-Gauss-Bonnet (ESGB) gravity. This theory has attracted particular attention due to its rich phenomenology for binary black-hole (BH) mergers, thanks to the presence of non-trivial scalar fields. Starting from the state-of-the art, effective-one-body (EOB) multipolar waveform model for spin-precessing binary BHs…
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Taxonomy
TopicsGeophysics and Gravity Measurements · Cosmology and Gravitation Theories · Geomagnetism and Paleomagnetism Studies
