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Ultra-High Energy Probes of Classicalization

Classicalizing theories are characterized by a rapid growth of the scattering cross section. This growth converts these sort of theories in interesting probes for ultra-high energy experiments even at relatively low luminosity, such as cosmic rays or Plasma Wakefield accelerators. The microscopic re...

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Detalles Bibliográficos
Autores principales: Dvali, Gia, Gomez, Cesar
Lenguaje:eng
Publicado: 2012
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2012/07/015
http://cds.cern.ch/record/1448445
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author Dvali, Gia
Gomez, Cesar
author_facet Dvali, Gia
Gomez, Cesar
author_sort Dvali, Gia
collection CERN
description Classicalizing theories are characterized by a rapid growth of the scattering cross section. This growth converts these sort of theories in interesting probes for ultra-high energy experiments even at relatively low luminosity, such as cosmic rays or Plasma Wakefield accelerators. The microscopic reason behind this growth is the production of N-particle states, classicalons, that represent self-sustained lumps of soft Bosons. For spin-2 theories this is the quantum portrait of what in the classical limit are known as black holes. We emphasize the importance of this quantum picture which liberates us from the artifacts of the classical geometric limit and allows to scan a much wider landscape of experimentally-interesting quantum theories. We identify a phenomenologically-viable class of spin-2 theories for which the growth of classicalon production cross section can be as efficient as to compete with QCD cross section already at 100 TeV energy, signaling production of quantum black holes with graviton occupation number of order 10^4.
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spelling cern-14484452023-03-14T17:27:40Zdoi:10.1088/1475-7516/2012/07/015http://cds.cern.ch/record/1448445engDvali, GiaGomez, CesarUltra-High Energy Probes of ClassicalizationParticle Physics - PhenomenologyClassicalizing theories are characterized by a rapid growth of the scattering cross section. This growth converts these sort of theories in interesting probes for ultra-high energy experiments even at relatively low luminosity, such as cosmic rays or Plasma Wakefield accelerators. The microscopic reason behind this growth is the production of N-particle states, classicalons, that represent self-sustained lumps of soft Bosons. For spin-2 theories this is the quantum portrait of what in the classical limit are known as black holes. We emphasize the importance of this quantum picture which liberates us from the artifacts of the classical geometric limit and allows to scan a much wider landscape of experimentally-interesting quantum theories. We identify a phenomenologically-viable class of spin-2 theories for which the growth of classicalon production cross section can be as efficient as to compete with QCD cross section already at 100 TeV energy, signaling production of quantum black holes with graviton occupation number of order 10^4.Classicalizing theories are characterized by a rapid growth of the scattering cross section. This growth converts these sort of theories in interesting probes for ultra-high energy experiments even at relatively low luminosity, such as cosmic rays or Plasma Wakefield accelerators. The microscopic reason behind this growth is the production of N-particle states, classicalons, that represent self-sustained lumps of soft Bosons. For spin-2 theories this is the quantum portrait of what in the classical limit are known as black holes. We emphasize the importance of this quantum picture which liberates us from the artifacts of the classical geometric limit and allows to scan a much wider landscape of experimentally-interesting quantum theories. We identify a phenomenologically-viable class of spin-2 theories for which the growth of classicalon production cross section can be as efficient as to compete with QCD cross section already at 100 TeV energy, signaling production of quantum black holes with graviton occupation number of order 10^4.arXiv:1205.2540oai:cds.cern.ch:14484452012-05-14
spellingShingle Particle Physics - Phenomenology
Dvali, Gia
Gomez, Cesar
Ultra-High Energy Probes of Classicalization
title Ultra-High Energy Probes of Classicalization
title_full Ultra-High Energy Probes of Classicalization
title_fullStr Ultra-High Energy Probes of Classicalization
title_full_unstemmed Ultra-High Energy Probes of Classicalization
title_short Ultra-High Energy Probes of Classicalization
title_sort ultra-high energy probes of classicalization
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1088/1475-7516/2012/07/015
http://cds.cern.ch/record/1448445
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