Quantum fields during black hole formation: how good an approximation is the Unruh state?

Abstract We study the quantum effects of a test Klein-Gordon field in a Vaidya space-time consisting of a collapsing null shell that forms a Schwazschild black hole, by explicitly obtaining, in a (1 + 1)-dimensional model, the Wightman function, the renormalised stress-energy tensor, and by analysin...

Full description

Bibliographic Details
Main Authors: Benito A. Juárez-Aubry, Jorma Louko
Format: Article
Language:English
Published: SpringerOpen 2018-05-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP05(2018)140
id doaj-7526abc97e28481fac41e705cb74740e
record_format Article
spelling doaj-7526abc97e28481fac41e705cb74740e2020-11-24T22:04:14ZengSpringerOpenJournal of High Energy Physics1029-84792018-05-012018512410.1007/JHEP05(2018)140Quantum fields during black hole formation: how good an approximation is the Unruh state?Benito A. Juárez-Aubry0Jorma Louko1Departamento de Gravitación y Teoría de Campos, Instituto de Ciencias Nucleares, Universidad Nacional Autónoma de MéxicoSchool of Mathematical Sciences, University of NottinghamAbstract We study the quantum effects of a test Klein-Gordon field in a Vaidya space-time consisting of a collapsing null shell that forms a Schwazschild black hole, by explicitly obtaining, in a (1 + 1)-dimensional model, the Wightman function, the renormalised stress-energy tensor, and by analysing particle detector rates along stationary orbits in the exterior black hole region, and make a comparison with the folklore that the Unruh state is the state that emerges from black hole formation. In the causal future of the shell, we find a negative ingoing flux at the horizon that agrees precisely with the Unruh state calculation, and is the source of black hole radiation, while in the future null infinity we find that the radiation flux output in the Unruh state is an upper bound for the positive outgoing flux in the collapsing null shell spacetime. This indicates that back-reaction estimates based on Unruh state calculations over-estimate the energy output carried by so-called pre-Hawking radiation. The value of the output predicted by the Unruh state is however approached exponentially fast. Finally, we find that at late times, stationary observers in the exterior black hole region in the collapsing shell spacetime detect the local Hawking temperature, which is also well characterised by the Unruh state, coming from right-movers. Early-time discrepancies between the detector rates for the Unruh state and for the state in the collapsing shell spacetime are explored numerically.http://link.springer.com/article/10.1007/JHEP05(2018)140Black HolesField Theories in Lower Dimensions
collection DOAJ
language English
format Article
sources DOAJ
author Benito A. Juárez-Aubry
Jorma Louko
spellingShingle Benito A. Juárez-Aubry
Jorma Louko
Quantum fields during black hole formation: how good an approximation is the Unruh state?
Journal of High Energy Physics
Black Holes
Field Theories in Lower Dimensions
author_facet Benito A. Juárez-Aubry
Jorma Louko
author_sort Benito A. Juárez-Aubry
title Quantum fields during black hole formation: how good an approximation is the Unruh state?
title_short Quantum fields during black hole formation: how good an approximation is the Unruh state?
title_full Quantum fields during black hole formation: how good an approximation is the Unruh state?
title_fullStr Quantum fields during black hole formation: how good an approximation is the Unruh state?
title_full_unstemmed Quantum fields during black hole formation: how good an approximation is the Unruh state?
title_sort quantum fields during black hole formation: how good an approximation is the unruh state?
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2018-05-01
description Abstract We study the quantum effects of a test Klein-Gordon field in a Vaidya space-time consisting of a collapsing null shell that forms a Schwazschild black hole, by explicitly obtaining, in a (1 + 1)-dimensional model, the Wightman function, the renormalised stress-energy tensor, and by analysing particle detector rates along stationary orbits in the exterior black hole region, and make a comparison with the folklore that the Unruh state is the state that emerges from black hole formation. In the causal future of the shell, we find a negative ingoing flux at the horizon that agrees precisely with the Unruh state calculation, and is the source of black hole radiation, while in the future null infinity we find that the radiation flux output in the Unruh state is an upper bound for the positive outgoing flux in the collapsing null shell spacetime. This indicates that back-reaction estimates based on Unruh state calculations over-estimate the energy output carried by so-called pre-Hawking radiation. The value of the output predicted by the Unruh state is however approached exponentially fast. Finally, we find that at late times, stationary observers in the exterior black hole region in the collapsing shell spacetime detect the local Hawking temperature, which is also well characterised by the Unruh state, coming from right-movers. Early-time discrepancies between the detector rates for the Unruh state and for the state in the collapsing shell spacetime are explored numerically.
topic Black Holes
Field Theories in Lower Dimensions
url http://link.springer.com/article/10.1007/JHEP05(2018)140
work_keys_str_mv AT benitoajuarezaubry quantumfieldsduringblackholeformationhowgoodanapproximationistheunruhstate
AT jormalouko quantumfieldsduringblackholeformationhowgoodanapproximationistheunruhstate
_version_ 1725829751135797248