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Ringdowns for black holes with scalar hair: The large mass case

D’Addario, Giovanni; Padilla, Antonio; Saffin, Paul M.; Sotiriou, Thomas P.; Spiers, Andrew

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Authors

Giovanni D’Addario

PAUL SAFFIN PAUL.SAFFIN@NOTTINGHAM.AC.UK
Professor of Physics

THOMAS SOTIRIOU Thomas.Sotiriou@nottingham.ac.uk
Professor of Gravitational Physics



Abstract

Deviations from general relativity can alter the quasinormal mode (QNM) ringdown of perturbed black holes. It is known that a shift-symmetric (hence massless) scalar can only introduce black hole hair if it couples to the Gauss-Bonnet invariant, in which case the scalar charge is fixed with respect to the black hole mass and controlled by the strength of that coupling. The charge per unit mass decreases with the mass and can, therefore, be used as a perturbative parameter for black holes that are sufficiently large with respect to the scale suppressing the deviation from general relativity or the Standard model. We construct an effective field theory scheme for QNMs using this perturbative parameter to capture deviations from Kerr for both the background and the perturbations. We demonstrate that up to second order in the charge per unit mass, QNMs can be calculated by solving standard linearized perturbation equations for the Kerr metric with sources depending on solutions of the same equations up to first order. It follows that corrections to the QNM frequencies are heavily suppressed for sufficiently massive black holes, meaning that LISA is very unlikely to detect any evidence of scalar hair in ringdown signals.

Journal Article Type Article
Acceptance Date Mar 13, 2024
Online Publication Date Apr 18, 2024
Publication Date Apr 15, 2024
Deposit Date Apr 22, 2024
Publicly Available Date Apr 22, 2024
Journal Physical Review D
Print ISSN 2470-0010
Electronic ISSN 2470-0029
Publisher American Physical Society
Peer Reviewed Peer Reviewed
Volume 109
Issue 8
Article Number 084046
DOI https://doi.org/10.1103/physrevd.109.084046
Public URL https://nottingham-repository.worktribe.com/output/33839391
Publisher URL https://journals.aps.org/prd/abstract/10.1103/PhysRevD.109.084046

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