Gravitational wave echoes from macroscopic quantum gravity effects

Abstract New theoretical approaches developed in the last years predict that macroscopic quantum gravity effects in black holes should lead to modifications of the gravitational wave signals expected in the framework of classical general relativity, with these modifications being characterized in ce...

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Main Authors: Carlos Barceló, Raúl Carballo-Rubio, Luis J. Garay
Format: Article
Language:English
Published: SpringerOpen 2017-05-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP05(2017)054
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spelling doaj-ac1706181116471096a34e1a283201c42020-11-24T21:36:19ZengSpringerOpenJournal of High Energy Physics1029-84792017-05-012017512110.1007/JHEP05(2017)054Gravitational wave echoes from macroscopic quantum gravity effectsCarlos Barceló0Raúl Carballo-Rubio1Luis J. Garay2Instituto de Astrofísica de Andalucía (IAA-CSIC)The Cosmology & Gravity Group and the Laboratory for Quantum Gravity & Strings, Department of Mathematics & Applied Mathematics, University of Cape TownDepartamento de Física Teórica II, Universidad Complutense de MadridAbstract New theoretical approaches developed in the last years predict that macroscopic quantum gravity effects in black holes should lead to modifications of the gravitational wave signals expected in the framework of classical general relativity, with these modifications being characterized in certain scenarios by the existence of dampened rep-etitions of the primary signal. Here we use the fact that non-perturbative corrections to the near-horizon external geometry of black holes are necessary for these modifications to exist, in order to classify different proposals and paradigms with respect to this criterion and study in a neat and systematic way their phenomenology. Proposals that lead naturally to the existence of echoes in the late-time ringdown of gravitational wave signals from black hole mergers must share the replacement of black holes by horizonless configurations with a physical surface showing reflective properties in the relevant range of frequencies. On the other hand, proposals or paradigms that restrict quantum gravity effects on the external geometry to be perturbative, such as black hole complementarity or the closely related firewall proposal, do not display echoes. For the sake of completeness we exploit the interplay between the timescales associated with the formation of firewalls and the mechanism behind the existence of echoes in order to conclude that even unconventional distortions of the firewall concept (such as naked firewalls) do not lead to this phenomenon.http://link.springer.com/article/10.1007/JHEP05(2017)054Black HolesModels of Quantum Gravity
collection DOAJ
language English
format Article
sources DOAJ
author Carlos Barceló
Raúl Carballo-Rubio
Luis J. Garay
spellingShingle Carlos Barceló
Raúl Carballo-Rubio
Luis J. Garay
Gravitational wave echoes from macroscopic quantum gravity effects
Journal of High Energy Physics
Black Holes
Models of Quantum Gravity
author_facet Carlos Barceló
Raúl Carballo-Rubio
Luis J. Garay
author_sort Carlos Barceló
title Gravitational wave echoes from macroscopic quantum gravity effects
title_short Gravitational wave echoes from macroscopic quantum gravity effects
title_full Gravitational wave echoes from macroscopic quantum gravity effects
title_fullStr Gravitational wave echoes from macroscopic quantum gravity effects
title_full_unstemmed Gravitational wave echoes from macroscopic quantum gravity effects
title_sort gravitational wave echoes from macroscopic quantum gravity effects
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2017-05-01
description Abstract New theoretical approaches developed in the last years predict that macroscopic quantum gravity effects in black holes should lead to modifications of the gravitational wave signals expected in the framework of classical general relativity, with these modifications being characterized in certain scenarios by the existence of dampened rep-etitions of the primary signal. Here we use the fact that non-perturbative corrections to the near-horizon external geometry of black holes are necessary for these modifications to exist, in order to classify different proposals and paradigms with respect to this criterion and study in a neat and systematic way their phenomenology. Proposals that lead naturally to the existence of echoes in the late-time ringdown of gravitational wave signals from black hole mergers must share the replacement of black holes by horizonless configurations with a physical surface showing reflective properties in the relevant range of frequencies. On the other hand, proposals or paradigms that restrict quantum gravity effects on the external geometry to be perturbative, such as black hole complementarity or the closely related firewall proposal, do not display echoes. For the sake of completeness we exploit the interplay between the timescales associated with the formation of firewalls and the mechanism behind the existence of echoes in order to conclude that even unconventional distortions of the firewall concept (such as naked firewalls) do not lead to this phenomenon.
topic Black Holes
Models of Quantum Gravity
url http://link.springer.com/article/10.1007/JHEP05(2017)054
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