Cosmic censorship of trans-Planckian field ranges in gravitational collapse

A classical solution where the (scalar) field value moves by an ${\cal O}(1)$ range in Planck units is believed to signal the breakdown of Effective Field Theory (EFT). One heuristic argument for this is that such a field will have enough energy to be inside its own Schwarzschild radius, and will...

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Main Author: Himanshu Chaudhary, Chethan Krishnan
Format: Article
Language:English
Published: SciPost 2020-09-01
Series:SciPost Physics
Online Access:https://scipost.org/SciPostPhys.9.3.036
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spelling doaj-e23852d615134a06898f85153771f9f52020-11-25T02:43:21ZengSciPostSciPost Physics2542-46532020-09-019303610.21468/SciPostPhys.9.3.036Cosmic censorship of trans-Planckian field ranges in gravitational collapseHimanshu Chaudhary, Chethan KrishnanA classical solution where the (scalar) field value moves by an ${\cal O}(1)$ range in Planck units is believed to signal the breakdown of Effective Field Theory (EFT). One heuristic argument for this is that such a field will have enough energy to be inside its own Schwarzschild radius, and will result in collapse. In this paper, we consider an inverse problem: what kind of field ranges arise during the gravitational collapse of a classical field? Despite the fact that collapse has been studied for almost a hundred years, most of the discussion is phrased in terms of fluid stress tensors, and not fields. An exception is the scalar collapse made famous by Choptuik. We re-consider Choptuik-like systems, but with the emphasis now on the evolution of the scalar. We give strong evidence that generic spherically symmetric collapse of a massless scalar field leads to super-Planckian field movement. But we also note that in every such supercritical collapse scenario, the large field range is hidden behind an apparent horizon. We also discuss how the familiar perfect fluid models for collapse like Oppenheimer-Snyder and Vaidya should be viewed in light of our results.https://scipost.org/SciPostPhys.9.3.036
collection DOAJ
language English
format Article
sources DOAJ
author Himanshu Chaudhary, Chethan Krishnan
spellingShingle Himanshu Chaudhary, Chethan Krishnan
Cosmic censorship of trans-Planckian field ranges in gravitational collapse
SciPost Physics
author_facet Himanshu Chaudhary, Chethan Krishnan
author_sort Himanshu Chaudhary, Chethan Krishnan
title Cosmic censorship of trans-Planckian field ranges in gravitational collapse
title_short Cosmic censorship of trans-Planckian field ranges in gravitational collapse
title_full Cosmic censorship of trans-Planckian field ranges in gravitational collapse
title_fullStr Cosmic censorship of trans-Planckian field ranges in gravitational collapse
title_full_unstemmed Cosmic censorship of trans-Planckian field ranges in gravitational collapse
title_sort cosmic censorship of trans-planckian field ranges in gravitational collapse
publisher SciPost
series SciPost Physics
issn 2542-4653
publishDate 2020-09-01
description A classical solution where the (scalar) field value moves by an ${\cal O}(1)$ range in Planck units is believed to signal the breakdown of Effective Field Theory (EFT). One heuristic argument for this is that such a field will have enough energy to be inside its own Schwarzschild radius, and will result in collapse. In this paper, we consider an inverse problem: what kind of field ranges arise during the gravitational collapse of a classical field? Despite the fact that collapse has been studied for almost a hundred years, most of the discussion is phrased in terms of fluid stress tensors, and not fields. An exception is the scalar collapse made famous by Choptuik. We re-consider Choptuik-like systems, but with the emphasis now on the evolution of the scalar. We give strong evidence that generic spherically symmetric collapse of a massless scalar field leads to super-Planckian field movement. But we also note that in every such supercritical collapse scenario, the large field range is hidden behind an apparent horizon. We also discuss how the familiar perfect fluid models for collapse like Oppenheimer-Snyder and Vaidya should be viewed in light of our results.
url https://scipost.org/SciPostPhys.9.3.036
work_keys_str_mv AT himanshuchaudharychethankrishnan cosmiccensorshipoftransplanckianfieldrangesingravitationalcollapse
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