English

Black hole evaporation and semiclassicality at large D

High Energy Physics - Theory 2020-07-22 v1 General Relativity and Quantum Cosmology

Abstract

Black holes of sufficiently large initial radius are expected to be well described by a semiclassical analysis at least until half of their initial mass has evaporated away. For a small number of spacetime dimensions, this holds as long as the black hole is parametrically larger than the Planck length. In that case, curvatures are small and backreaction onto geometry is expected to be well described by a time-dependent classical metric. We point out that at large DD, small curvature is insufficient to guarantee a valid semiclassical description of black holes. Instead, the strongest bounds come from demanding that the rate of change of the geometry is small and that black holes scramble information faster than they evaporate. This is a consequence of the enormous power of Hawking radiation in DD-dimensions due to the large available phase space and the resulting minuscule evaporation times. Asymptotically, only black holes with entropies SDD+3logDS \geq D^{D+3} \log D are semiclassical. We comment on implications for realistic quantum gravity models in D26D \leq 26 as well as relations to bounds on theories with a large number of gravitationally interacting light species.

Keywords

Cite

@article{arxiv.1908.08083,
  title  = {Black hole evaporation and semiclassicality at large D},
  author = {Frederik Holdt-Sørensen and David A. McGady and Nico Wintergerst},
  journal= {arXiv preprint arXiv:1908.08083},
  year   = {2020}
}

Comments

6 pages

R2 v1 2026-06-23T10:53:39.256Z