Enriching the Symphony of Gravitational Waves from Binary Black Holes by Tuning Higher Harmonics
Roberto Cotesta, Alessandra Buonanno, Alejandro Boh\'e, Andrea, Taracchini, Ian Hinder, Serguei Ossokine

TL;DR
This paper develops an advanced gravitational waveform model for binary black holes that includes higher-order modes, significantly improving accuracy for gravitational wave detection and analysis.
Contribution
It introduces the first inspiral-merger-ringdown waveform model with multiple higher modes for spinning, nonprecessing binary black holes, combining post-Newtonian, numerical relativity, and perturbation data.
Findings
Faithfulness improves from 90% to over 99.9% with higher modes included.
Model accurately captures gravitational wave signals across a wide mass range.
Enhanced waveform model will be used in upcoming LIGO and Virgo observations.
Abstract
For the first time, we construct an inspiral-merger-ringdown waveform model within the effective-one-body formalism for spinning, nonprecessing binary black holes that includes gravitational modes beyond the dominant mode, specifically . Our multipolar waveform model incorporates recent (resummed) post-Newtonian results for the inspiral and information from 157 numerical-relativity simulations, and 13 waveforms from black-hole perturbation theory for the (plunge-)merger and ringdown. We quantify the improved accuracy including higher-order modes by computing the faithfulness of the waveform model against the numerical-relativity waveforms used to construct the model. We define the faithfulness as the match maximized over time, phase of arrival, gravitational-wave polarization and sky position of the waveform model, and averaged…
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