Within general relativity, the unique stationary solution of an isolated black hole is the Kerr spacetime, which has a peculiar multipolar structure depending only on its mass and spin. We develop a general method to extract the multipole moments of arbitrary stationary spacetimes and apply it to a large family of horizonless microstate geometries. The latter can break the axial and equatorial symmetry of the Kerr metric and have a much richer multipolar structure, which provides a portal to constrain fuzzball models phenomenologically. We find numerical evidence that all multipole moments are typically larger (in absolute value) than those of a Kerr black hole with the same mass and spin. Current measurements of the quadrupole moment of black-hole candidates could place only mild constraints on fuzzballs, while future gravitational-wave detections of extreme mass-ratio inspirals with the space mission LISA will improve these bounds by orders of magnitude.

Distinguishing Fuzzballs from Black Holes through Their Multipolar Structure / Bianchi, M.; Consoli, D.; Grillo, A.; Morales, J. F.; Pani, P.; Raposo, G.. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 125:22(2020), p. 221601. [10.1103/PhysRevLett.125.221601]

Distinguishing Fuzzballs from Black Holes through Their Multipolar Structure

Pani P.
;
2020

Abstract

Within general relativity, the unique stationary solution of an isolated black hole is the Kerr spacetime, which has a peculiar multipolar structure depending only on its mass and spin. We develop a general method to extract the multipole moments of arbitrary stationary spacetimes and apply it to a large family of horizonless microstate geometries. The latter can break the axial and equatorial symmetry of the Kerr metric and have a much richer multipolar structure, which provides a portal to constrain fuzzball models phenomenologically. We find numerical evidence that all multipole moments are typically larger (in absolute value) than those of a Kerr black hole with the same mass and spin. Current measurements of the quadrupole moment of black-hole candidates could place only mild constraints on fuzzballs, while future gravitational-wave detections of extreme mass-ratio inspirals with the space mission LISA will improve these bounds by orders of magnitude.
2020
black holes, gravitational waves
01 Pubblicazione su rivista::01a Articolo in rivista
Distinguishing Fuzzballs from Black Holes through Their Multipolar Structure / Bianchi, M.; Consoli, D.; Grillo, A.; Morales, J. F.; Pani, P.; Raposo, G.. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 125:22(2020), p. 221601. [10.1103/PhysRevLett.125.221601]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1474269
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