English

Isolated horizons in higher-dimensional Einstein-Gauss-Bonnet gravity

General Relativity and Quantum Cosmology 2008-11-26 v3

Abstract

The isolated horizon framework was introduced in order to provide a local description of black holes that are in equilibrium with their (possibly dynamic) environment. Over the past several years, the framework has been extended to include matter fields (dilaton, Yang-Mills etc) in D=4 dimensions and cosmological constant in D3D\geq3 dimensions. In this article we present a further extension of the framework that includes black holes in higher-dimensional Einstein-Gauss-Bonnet (EGB) gravity. In particular, we construct a covariant phase space for EGB gravity in arbitrary dimensions which allows us to derive the first law. We find that the entropy of a weakly isolated and non-rotating horizon is given by S=(1/4GD)SD2ϵ~(1+2αR)\mathcal{S}=(1/4G_{D})\oint_{S^{D-2}}\bm{\tilde{\epsilon}}(1+2\alpha\mathcal{R}). In this expression SD2S^{D-2} is the (D2)(D-2)-dimensional cross section of the horizon with area form ϵ~\bm{\tilde{\epsilon}} and Ricci scalar R\mathcal{R}, GDG_{D} is the DD-dimensional Newton constant and α\alpha is the Gauss-Bonnet parameter. This expression for the horizon entropy is in agreement with those predicted by the Euclidean and Noether charge methods. Thus we extend the isolated horizon framework beyond Einstein gravity.

Keywords

Cite

@article{arxiv.0705.1371,
  title  = {Isolated horizons in higher-dimensional Einstein-Gauss-Bonnet gravity},
  author = {Tomas Liko and Ivan Booth},
  journal= {arXiv preprint arXiv:0705.1371},
  year   = {2008}
}
R2 v1 2026-06-21T08:26:48.525Z