Published December 21, 2013 | Version v1
Journal article

Black holes in Lorentz-violating gravity theories

  • 1. Institut d'Astrophysique de Paris, UMR 7095 du CNRS, Université Pierre and Marie Curie, 98bis Bvd Arago, 75014 Paris (France)
  • 2. SISSA, Via Bonomea 265, 34136, Trieste, Italy and INFN, Sezione di Trieste (Italy)

Description

Lorentz symmetry and the notion of light cones play a central role in the definition of horizons and the existence of black holes. Current observations provide strong indications that astrophysical black holes do exist in Nature. Here we explore what happens to the notion of a black hole in gravity theories where local Lorentz symmetry is violated, and discuss the relevant astrophysical implications. Einstein-aether theory and Hořava gravity are used as the theoretical background for addressing this question. We review earlier results about static, spherically symmetric black holes, which demonstrate that in Lorentz-violating theories there can be a new type of horizon and, hence, a new notion of black hole. We also present both known and new results on slowly rotating black holes in these theories, which provide insights on how generic these new horizons are. Finally, we discuss the differences between black holes in Lorentz-violating theories and in General Relativity, and assess to what extent they can be probed with present and future observations. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/0264-9381/30/24/244010

Additional details

Publishing Information

Journal Title
Classical and Quantum Gravity
Journal Volume
30
Journal Issue
24
Journal Page Range
[22 p.]
ISSN
0264-9381
CODEN
CQGRDG

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
46032473
Subject category
S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
Descriptors DEI
ASTROPHYSICS; BLACK HOLES; GENERAL RELATIVITY THEORY; GRAVITATION; LIGHT CONE; LORENTZ INVARIANCE; SPHERICAL CONFIGURATION; SYMMETRY
Descriptors DEC
CONFIGURATION; FIELD THEORIES; INVARIANCE PRINCIPLES; PHYSICS; RELATIVITY THEORY; SPACE-TIME