Ergoregion instability of exotic compact objects: Electromagnetic and gravitational perturbations and the role of absorption

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Ergoregion instability of exotic compact objects : Electromagnetic and gravitational perturbations and the role of absorption. / Maggio, Elisa; Cardoso, Vitor; Dolan, Sam R.; Pani, Paolo.

I: Physical Review D, Bind 99, Nr. 6, 064007, 08.03.2019.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Maggio, E, Cardoso, V, Dolan, SR & Pani, P 2019, 'Ergoregion instability of exotic compact objects: Electromagnetic and gravitational perturbations and the role of absorption', Physical Review D, bind 99, nr. 6, 064007. https://doi.org/10.1103/PhysRevD.99.064007

APA

Maggio, E., Cardoso, V., Dolan, S. R., & Pani, P. (2019). Ergoregion instability of exotic compact objects: Electromagnetic and gravitational perturbations and the role of absorption. Physical Review D, 99(6), [064007]. https://doi.org/10.1103/PhysRevD.99.064007

Vancouver

Maggio E, Cardoso V, Dolan SR, Pani P. Ergoregion instability of exotic compact objects: Electromagnetic and gravitational perturbations and the role of absorption. Physical Review D. 2019 mar. 8;99(6). 064007. https://doi.org/10.1103/PhysRevD.99.064007

Author

Maggio, Elisa ; Cardoso, Vitor ; Dolan, Sam R. ; Pani, Paolo. / Ergoregion instability of exotic compact objects : Electromagnetic and gravitational perturbations and the role of absorption. I: Physical Review D. 2019 ; Bind 99, Nr. 6.

Bibtex

@article{3819d1a5c62e4ccb9a87e52991b18225,
title = "Ergoregion instability of exotic compact objects: Electromagnetic and gravitational perturbations and the role of absorption",
abstract = "Spinning horizonless compact objects may be unstable against an {"}ergoregion instability.{"} We investigate this mechanism for electromagnetic perturbations of ultracompact Kerr-like objects with a reflecting surface, extending previous (numerical and analytical) work limited to the scalar case. We derive an analytical result for the frequency and the instability timescale of unstable modes which is valid at small frequencies. We argue that our analysis can be directly extended to gravitational perturbations of exotic compact objects in the black-hole limit. The instability for electromagnetic and gravitational perturbations is generically stronger than in the scalar case, and it requires larger absorption to be quenched. We argue that exotic compact objects with spin chi less than or similar to 0.7 (chi less than or similar to 0.9) should have an absorption coefficient of at least 0.3% (6%) to remain linearly stable, and that an absorption coefficient of at least similar to 60% would quench the instability for any spin. We also show that-in the static limit-the scalar, electromagnetic, and gravitatonal perturbations of the Kerr metric are related to one another through Darboux transformations. Finally, correcting previous results, we give the transformations that bring the Teukolsky equation in a form described by a real potential also in the gravitational case.",
keywords = "ROTATING BLACK-HOLE, FUZZBALL PROPOSAL, NORMAL-MODES, EQUATIONS, FIELD",
author = "Elisa Maggio and Vitor Cardoso and Dolan, {Sam R.} and Paolo Pani",
year = "2019",
month = mar,
day = "8",
doi = "10.1103/PhysRevD.99.064007",
language = "English",
volume = "99",
journal = "Physical Review D",
issn = "2470-0010",
publisher = "American Physical Society",
number = "6",

}

RIS

TY - JOUR

T1 - Ergoregion instability of exotic compact objects

T2 - Electromagnetic and gravitational perturbations and the role of absorption

AU - Maggio, Elisa

AU - Cardoso, Vitor

AU - Dolan, Sam R.

AU - Pani, Paolo

PY - 2019/3/8

Y1 - 2019/3/8

N2 - Spinning horizonless compact objects may be unstable against an "ergoregion instability." We investigate this mechanism for electromagnetic perturbations of ultracompact Kerr-like objects with a reflecting surface, extending previous (numerical and analytical) work limited to the scalar case. We derive an analytical result for the frequency and the instability timescale of unstable modes which is valid at small frequencies. We argue that our analysis can be directly extended to gravitational perturbations of exotic compact objects in the black-hole limit. The instability for electromagnetic and gravitational perturbations is generically stronger than in the scalar case, and it requires larger absorption to be quenched. We argue that exotic compact objects with spin chi less than or similar to 0.7 (chi less than or similar to 0.9) should have an absorption coefficient of at least 0.3% (6%) to remain linearly stable, and that an absorption coefficient of at least similar to 60% would quench the instability for any spin. We also show that-in the static limit-the scalar, electromagnetic, and gravitatonal perturbations of the Kerr metric are related to one another through Darboux transformations. Finally, correcting previous results, we give the transformations that bring the Teukolsky equation in a form described by a real potential also in the gravitational case.

AB - Spinning horizonless compact objects may be unstable against an "ergoregion instability." We investigate this mechanism for electromagnetic perturbations of ultracompact Kerr-like objects with a reflecting surface, extending previous (numerical and analytical) work limited to the scalar case. We derive an analytical result for the frequency and the instability timescale of unstable modes which is valid at small frequencies. We argue that our analysis can be directly extended to gravitational perturbations of exotic compact objects in the black-hole limit. The instability for electromagnetic and gravitational perturbations is generically stronger than in the scalar case, and it requires larger absorption to be quenched. We argue that exotic compact objects with spin chi less than or similar to 0.7 (chi less than or similar to 0.9) should have an absorption coefficient of at least 0.3% (6%) to remain linearly stable, and that an absorption coefficient of at least similar to 60% would quench the instability for any spin. We also show that-in the static limit-the scalar, electromagnetic, and gravitatonal perturbations of the Kerr metric are related to one another through Darboux transformations. Finally, correcting previous results, we give the transformations that bring the Teukolsky equation in a form described by a real potential also in the gravitational case.

KW - ROTATING BLACK-HOLE

KW - FUZZBALL PROPOSAL

KW - NORMAL-MODES

KW - EQUATIONS

KW - FIELD

U2 - 10.1103/PhysRevD.99.064007

DO - 10.1103/PhysRevD.99.064007

M3 - Journal article

VL - 99

JO - Physical Review D

JF - Physical Review D

SN - 2470-0010

IS - 6

M1 - 064007

ER -

ID: 298644066