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Hawking radiation and the Stefan-Boltzmann law: The effective radius of the black-hole quantum atmosphere

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arxiv 1607.02510 v1 pith:RJVQLBS3 submitted 2016-07-08 gr-qc astro-ph.HEhep-th

classification gr-qcastro-ph.HEhep-th
keywords textblack-holeradiationhawkingdimensionalquantumhorizonschwarzschild
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abstract

It has recently been suggested [S. B. Giddings, Phys. Lett. B {\bf 754}, 39 (2016)] that the Hawking black-hole radiation spectrum originates from an effective quantum "atmosphere" which extends well outside the black-hole horizon. In particular, comparing the Hawking radiation power of a $(3+1)$-dimensional Schwarzschild black hole of horizon radius $r_{\text{H}}$ with the familiar Stefan-Boltzmann radiation power of a $(3+1)$-dimensional flat space perfect blackbody emitter, Giddings concluded that the source of the Hawking semi-classical black-hole radiation is a quantum region outside the Schwarzschild black-hole horizon whose effective radius $r_{\text{A}}$ is characterized by the relation $\Delta r\equiv r_{\text{A}}-r_{\text{H}}\sim r_{\text{H}}$. It is of considerable physical interest to test the general validity of Giddings's intriguing conclusion. To this end, we study the Hawking radiation of $(D+1)$-dimensional Schwarzschild black holes. We find that the dimensionless radii $r_{\text{A}}/r_{\text{H}}$ which characterize the black-hole quantum atmospheres, as determined from the Hawking black-hole radiation power and the $(D+1)$-dimensional Stefan-Boltzmann radiation law, are a decreasing function of the number $D+1$ of spacetime dimensions. In particular, it is shown that radiating $(D+1)$-dimensional Schwarzschild black holes are characterized by the relation $(r_{\text{A}}-r_{\text{H}})/r_{\text{H}}\ll1$ in the large $D\gg1$ regime. Our results therefore suggest that, at least in some physical cases, the Hawking emission spectrum originates from quantum excitations very near the black-hole horizon.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Test of quantum atmosphere in the dimensionally reduced Schwarzschild black hole

    gr-qc 2019-08 conditional novelty 5.0 of 10

    In a dimensionally reduced Schwarzschild black hole, the temperature carried by outgoing Hawking modes vanishes at the horizon, peaks near 1.43 to 1.5 r_h, and approaches the Hawking temperature at infinity.

  2. Quantum Scattering in Schwarzschild Spacetime: Hawking Radiation and Black Hole Atmospheres

    hep-th 2026-07 reject novelty 4.0 of 10

    The paper derives a Bose-Einstein emission rate at the Hawking temperature and an atmosphere radius rAtm = 4 ln2 r_s from antibound poles of the Schwarzschild S-matrix, but the derivation is not self-consistent.

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