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Fluctuations of an evaporating black hole from back reaction of its Hawking radiation: Questioning a premise in earlier work

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arxiv gr-qc/0601088 v2 pith:U3ZTDAL4 submitted 2006-01-20 gr-qc

Fluctuations of an evaporating black hole from back reaction of its Hawking radiation: Questioning a premise in earlier work

classification gr-qc
keywords fluctuationsblackevaporatingholehorizonquantumearliergravity
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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This paper delineates the first steps in a systematic quantitative study of the spacetime fluctuations induced by quantum fields in an evaporating black hole. We explain how the stochastic gravity formalism can be a useful tool for that purpose within a low-energy effective field theory approach to quantum gravity. As an explicit example we apply it to the study of the spherically-symmetric sector of metric perturbations around an evaporating black hole background geometry. For macroscopic black holes we find that those fluctuations grow and eventually become important when considering sufficiently long periods of time (of the order of the evaporation time), but well before the Planckian regime is reached. In addition, the assumption of a simple correlation between the fluctuations of the energy flux crossing the horizon and far from it, which was made in earlier work on spherically-symmetric induced fluctuations, is carefully analyzed and found to be invalid. Our analysis suggests the existence of an infinite amplitude for the fluctuations of the horizon as a three-dimensional hypersurface. We emphasize the need for understanding and designing operational ways of probing quantum metric fluctuations near the horizon and extracting physically meaningful information.

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  1. Quantum Fluctuations of the Black Hole Horizon

    hep-th 2026-06 unverdicted novelty 5.0

    Quantum width of spherically symmetric black hole horizons is defined by signal escape timing and calculated in perturbative quantum gravity to often greatly exceed the Planck length, scaling as sqrt(l_P r_s^2 / sigma...