Stationary Black Holes as Holographs II
arXiv:1307.1683 · doi:10.1088/0264-9381/31/3/035006
Abstract
Smooth four-dimensional electrovac spacetimes in Einstein's theory are considered each possessing a pair of null hypersurfaces, and , generated by expansion and shear free geodesically complete null congruences such that they intersect on a two-dimensional spacelike surface, . By making use of a combination of the Newman-Penrose formalism and the null characteristic initial value problem it is shown that both the spacetime geometry and the electromagnetic field are uniquely determined, in the domain of dependence of once a complex vector field (determining the metric induced on ), the spin coefficient and the electromagnetic potential are specified on . The existence of a Killing vector field---with respect to which the null hypersurfaces and comprise a bifurcate type Killing horizon---is also justified in the domain of dependence of . Since, in general, the freely specifiable data on do not have any sort of symmetry the corresponding spacetimes do not possess any symmetry in addition to the horizon Killing vector field. Thereby, they comprise the class of generic `stationary' distorted electrovac black hole spacetimes. It is also shown that there are stationary distorted electrovac black hole configurations such that parallelly propagated curvature blow up occurs both to the future and to the past ends of some of the null generators of their bifurcate Killing horizon, and also that this behavior is universal. In particular, it is shown that, in the space of vacuum solutions to Einstein's equations, in an arbitrarily small neighborhood of the Schwarzschild solution this type of distorted vacuum black hole configurations always exist. A short discussion on the relation of these results and some of the recent claims on the instability of extremal black holes is also given.
35 pages, substantially extended introduction, added references, conclusions unchanged, to appear in CQG
References in corpus (4)
Cited by in corpus (11)
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