General parametrization of axisymmetric black holes in metric theories of gravity

Roman Konoplya, Luciano Rezzolla, and Alexander Zhidenko
Phys. Rev. D 93, 064015 – Published 7 March 2016

Abstract

Following previous work of ours in spherical symmetry, we here propose a new parametric framework to describe the spacetime of axisymmetric black holes in generic metric theories of gravity. In this case, the metric components are functions of both the radial and the polar angular coordinates, forcing a double expansion to obtain a generic axisymmetric metric expression. In particular, we use a continued-fraction expansion in terms of a compactified radial coordinate to express the radial dependence, while we exploit a Taylor expansion in terms of the cosine of the polar angle for the polar dependence. These choices lead to a superior convergence in the radial direction and to an exact limit on the equatorial plane. As a validation of our approach, we build parametrized representations of Kerr, rotating dilaton, and Einstein-dilaton-Gauss-Bonnet black holes. The match is already very good at lowest order in the expansion and improves as new orders are added. We expect a similar behavior for any stationary and axisymmetric black-hole metric.

  • Received 5 January 2016

DOI:https://doi.org/10.1103/PhysRevD.93.064015

© 2016 American Physical Society

Physics Subject Headings (PhySH)

Gravitation, Cosmology & Astrophysics

Authors & Affiliations

Roman Konoplya1, Luciano Rezzolla1,2, and Alexander Zhidenko3,1

  • 1Institute for Theoretical Physics, Goethe University, Max-von-Laue-Strasse 1, 60438 Frankfurt, Germany
  • 2Frankfurt Institute for Advanced Studies, Goethe-Universität, Ruth-Moufang-Strasse 1, 60438 Frankfurt, Germany
  • 3Centro de Matemática, Computação e Cognição, Universidade Federal do ABC (UFABC), Rua Abolição, CEP: 09210-180 Santo André, São Paulo, Brazil

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Issue

Vol. 93, Iss. 6 — 15 March 2016

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