English

The Fate of Nucleated Black Holes in de Sitter Quantum Gravity

High Energy Physics - Theory 2026-05-14 v2 General Relativity and Quantum Cosmology

Abstract

The Euclidean Nariai geometry has long been proposed as the instanton describing the nucleation of maximal-mass black holes in de Sitter space. We place this interpretation on firmer footing by showing that, once an observer is included, the gravitational path integral produces the imaginary phase required for a transition rate. As a warmup, we revisit the Hawking-Moss instanton and, as a byproduct, find that scalar fields can enhance black-hole nucleation, suggesting a quantum-gravity bound on scalar potentials with de Sitter solutions. We then study the subsequent semiclassical evolution of the nucleated black hole. We show that the previously claimed "anti-evaporation" channel is unphysical, arising from a quantum state with singular horizons. In a smooth state, the black hole instead undergoes standard thermal Hawking evaporation. We verify explicit agreement with the no-boundary state and argue that this evaporation is not subject to large quantum-gravity corrections. The nucleated black hole thus evaporates completely back to the maximally-entropic empty de Sitter vacuum, making the full process a Boltzmann fluctuation.

Keywords

Cite

@article{arxiv.2605.03015,
  title  = {The Fate of Nucleated Black Holes in de Sitter Quantum Gravity},
  author = {Xiaoyi Shi and Gustavo J. Turiaci and Chih-Hung Wu},
  journal= {arXiv preprint arXiv:2605.03015},
  year   = {2026}
}

Comments

67 pages, 3 figures. v2: appendix added on symmetries and the need for an observer in Nariai backgrounds. refs added