Quasinormal modes of Schwarzschild–anti-de Sitter black holes: Electromagnetic and gravitational perturbations

Vitor Cardoso and José P. S. Lemos
Phys. Rev. D 64, 084017 – Published 25 September 2001
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Abstract

We study the quasinormal modes (QNM) of electromagnetic and gravitational perturbations of a Schwarzschild black hole in an asymptotically anti–de Sitter (AdS) spacetime. Some of the electromagnetic modes do not oscillate; they only decay, since they have pure imaginary frequencies. The gravitational modes show peculiar features: the odd and even gravitational perturbations no longer have the same characteristic quasinormal frequencies. There is a special mode for odd perturbations whose behavior differs completely from the usual one in scalar and electromagnetic perturbations in AdS spacetime, but has a similar behavior to the Schwarzschild black hole in an asymptotically flat spacetime: the imaginary part of the frequency goes as 1/r+, where r+ is the horizon radius. We also investigate the small black-hole limit showing that the imaginary part of the frequency goes as r+2. These results are important to the AdS/CFT conjecture since, according to it, the QNM’s describe the approach to equilibrium in the conformal field theory.

  • Received 12 April 2001

DOI:https://doi.org/10.1103/PhysRevD.64.084017

©2001 American Physical Society

Authors & Affiliations

Vitor Cardoso* and José P. S. Lemos

  • CENTRA, Departamento de Física, Instituto Superior Técnico, Av. Rovisco Pais 1, 1096 Lisboa, Portugal

  • *Email address: vcardoso@fisica.ist.utl.pt
  • Email address: lemos@kelvin.ist.utl.pt

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Vol. 64, Iss. 8 — 15 October 2001

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