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Cosmological black holes from self-gravitating fields

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arxiv 1312.3682 v2 pith:GQZYDAOJ submitted 2013-12-13 gr-qc astro-ph.COhep-th

classification gr-qcastro-ph.COhep-th
keywords blackexactholessolutionactioncosmologicalexpansionfields
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Both cosmological expansion and black holes are ubiquitous features of our observable Universe, yet exact solutions connecting the two have remained elusive. To this end, we study self-gravitating classical fields within dynamical spherically symmetric solutions that can describe black holes in an expanding universe. After attempting a perturbative approach of a known black-hole solution with scalar hair, we show by exact methods that the unique scalar field action with first-order derivatives that can source shear-free expansion around a black hole requires noncanonical kinetic terms. The resulting action is an incompressible limit of k-essence, otherwise known as the cuscuton theory, and the spacetime it describes is the McVittie metric. We further show that this solution is an exact solution to the vacuum Ho\v{r}ava-Lifshitz gravity with anisotropic Weyl symmetry.

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  1. Charged cosmological black holes: a thorough study of a family of solutions

    gr-qc 2019-08 conditional novelty 6.0 of 10

    The Shah-Vaidya charged cosmological black hole metric is shown to be an exact solution of Einstein-Maxwell equations with a cuscuton field, and its causal structure is classified into four parameter regions with diff...

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