Electroweak stability and discovery luminosities for new physics
Abstract What is the luminosity needed for discovering new physics if the electroweak scale is to remain stable? In this work we study this question, with the pertinent example of a real singlet scalar which couples to the Higgs field at the renormalizable level. Observing that the electroweak scale...
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doaj-ab32d40bffd149029495608869e73c712020-12-27T12:18:42ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522020-12-01801211410.1140/epjc/s10052-020-08755-5Electroweak stability and discovery luminosities for new physicsKerem Cankoçak0Durmuş Demir1Canan Karahan2Sercan Şen3Physics Engineering Department, İstanbul Technical UniversityFaculty of Engineering and Natural Sciences, Sabancı UniversityPhysics Engineering Department, İstanbul Technical UniversityPhysics Engineering Department, Hacettepe UniversityAbstract What is the luminosity needed for discovering new physics if the electroweak scale is to remain stable? In this work we study this question, with the pertinent example of a real singlet scalar which couples to the Higgs field at the renormalizable level. Observing that the electroweak scale remains stable if the two scalars couple in a see-sawic fashion through a mass-degeneracy-driven unification linkup among quartic couplings at a given scale, we show by detailed simulation studies of the $$pp\rightarrow (\mathrm{singlet\ scalar}) \rightarrow Z Z \rightarrow 4\ell $$ p p → ( singlet scalar ) → Z Z → 4 ℓ channel that the HL-LHC, which is expected to deliver an integrated luminosity of $$3~\mathrm{ab^{-1}}$$ 3 ab - 1 , has no significant excess of signal over the background in the 800–2000 GeV mass range. The FCC-hh, on the other hand, can discover scalars up to a mass of 870 GeV with an integrated luminosity $$20~\mathrm{ab^{-1}}$$ 20 ab - 1 . Observation at $$3\sigma $$ 3 σ (discovery at $$5\sigma $$ 5 σ ) of a new scalar with a minimum mass 800 GeV requires at least $$2~\mathrm{ab^{-1}}$$ 2 ab - 1 ( $$5.2~\mathrm{ab^{-1}}$$ 5.2 ab - 1 ) integrated luminosity, showing that the new physics that does not destabilize the electroweak scale is accessible only at very high luminosities, and can be tested already in the early stages of the FCC-hh operation period.https://doi.org/10.1140/epjc/s10052-020-08755-5 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kerem Cankoçak Durmuş Demir Canan Karahan Sercan Şen |
spellingShingle |
Kerem Cankoçak Durmuş Demir Canan Karahan Sercan Şen Electroweak stability and discovery luminosities for new physics European Physical Journal C: Particles and Fields |
author_facet |
Kerem Cankoçak Durmuş Demir Canan Karahan Sercan Şen |
author_sort |
Kerem Cankoçak |
title |
Electroweak stability and discovery luminosities for new physics |
title_short |
Electroweak stability and discovery luminosities for new physics |
title_full |
Electroweak stability and discovery luminosities for new physics |
title_fullStr |
Electroweak stability and discovery luminosities for new physics |
title_full_unstemmed |
Electroweak stability and discovery luminosities for new physics |
title_sort |
electroweak stability and discovery luminosities for new physics |
publisher |
SpringerOpen |
series |
European Physical Journal C: Particles and Fields |
issn |
1434-6044 1434-6052 |
publishDate |
2020-12-01 |
description |
Abstract What is the luminosity needed for discovering new physics if the electroweak scale is to remain stable? In this work we study this question, with the pertinent example of a real singlet scalar which couples to the Higgs field at the renormalizable level. Observing that the electroweak scale remains stable if the two scalars couple in a see-sawic fashion through a mass-degeneracy-driven unification linkup among quartic couplings at a given scale, we show by detailed simulation studies of the $$pp\rightarrow (\mathrm{singlet\ scalar}) \rightarrow Z Z \rightarrow 4\ell $$ p p → ( singlet scalar ) → Z Z → 4 ℓ channel that the HL-LHC, which is expected to deliver an integrated luminosity of $$3~\mathrm{ab^{-1}}$$ 3 ab - 1 , has no significant excess of signal over the background in the 800–2000 GeV mass range. The FCC-hh, on the other hand, can discover scalars up to a mass of 870 GeV with an integrated luminosity $$20~\mathrm{ab^{-1}}$$ 20 ab - 1 . Observation at $$3\sigma $$ 3 σ (discovery at $$5\sigma $$ 5 σ ) of a new scalar with a minimum mass 800 GeV requires at least $$2~\mathrm{ab^{-1}}$$ 2 ab - 1 ( $$5.2~\mathrm{ab^{-1}}$$ 5.2 ab - 1 ) integrated luminosity, showing that the new physics that does not destabilize the electroweak scale is accessible only at very high luminosities, and can be tested already in the early stages of the FCC-hh operation period. |
url |
https://doi.org/10.1140/epjc/s10052-020-08755-5 |
work_keys_str_mv |
AT keremcankocak electroweakstabilityanddiscoveryluminositiesfornewphysics AT durmusdemir electroweakstabilityanddiscoveryluminositiesfornewphysics AT canankarahan electroweakstabilityanddiscoveryluminositiesfornewphysics AT sercansen electroweakstabilityanddiscoveryluminositiesfornewphysics |
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