Cargando…

Discovery of the Higgs Boson Decaying to Two Photons

The Standard Model (SM) of particle physics fundamentally relies on the existence of the Higgs boson. This massive particle is a relic of the underlying and hidden Higgs field, whose transformation into the Higgs boson provides mass to weak bosons and all massive fermions in the SM. This particle...

Descripción completa

Detalles Bibliográficos
Autor principal: Palmer, Christopher
Lenguaje:eng
Publicado: ProQuest, UMI Dissertations Publishing 2014
Materias:
Acceso en línea:http://cds.cern.ch/record/1951331
_version_ 1780944239813722112
author Palmer, Christopher
author_facet Palmer, Christopher
author_sort Palmer, Christopher
collection CERN
description The Standard Model (SM) of particle physics fundamentally relies on the existence of the Higgs boson. This massive particle is a relic of the underlying and hidden Higgs field, whose transformation into the Higgs boson provides mass to weak bosons and all massive fermions in the SM. This particle has been long-sought and finally using data from proton-proton collisions at the LHC, CMS and ATLAS experiments have discovered a particle which is compatible with the SM Higgs boson. Presented here is the development of one of the discovery channels, $\mathrm{H}\rightarrow\gamma\gamma$, and the final $\mathrm{H}\rightarrow\gamma\gamma$ analysis and results using the full luminosity of the LHC Run 1 dataset $\sim$25 $\mathrm{fb}^{-1}$ at 7 or 8 TeV center of mass energy. The observed (expected) significance of this di-photon excess in the final analysis is $5.7\sigma$ ($5.2\sigma$) with a measured signal strength of $\sigma / \sigma_{SM} = 1.14^{+0.26}_{-0.23}$. The mass of this Higgs boson is not predicted by the SM. Using the $\mathrm{H}\rightarrow\gamma\gamma$ channel, $\mathrm{M}_{\text{H}}$ is measured to be $124.70^{+0.35}_{-0.34}$ GeV. Other measured quantities are presented including the signal strength modifiers of different production mechanisms and spin hypothesis tests between spin-0 and spin-2 models. Searches for this Higgs boson decaying to the di-muon and di-electron states are presented. No excess is observed and universal lepton decays of this particle are therefore ruled out, supporting the SM Higgs boson interpretation. In addition, relevant searches, observations and measurements from CMS that characterize this particle are presented.
id cern-1951331
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2014
publisher ProQuest, UMI Dissertations Publishing
record_format invenio
spelling cern-19513312019-09-30T06:29:59Zhttp://cds.cern.ch/record/1951331engPalmer, ChristopherDiscovery of the Higgs Boson Decaying to Two PhotonsParticle Physics - ExperimentThe Standard Model (SM) of particle physics fundamentally relies on the existence of the Higgs boson. This massive particle is a relic of the underlying and hidden Higgs field, whose transformation into the Higgs boson provides mass to weak bosons and all massive fermions in the SM. This particle has been long-sought and finally using data from proton-proton collisions at the LHC, CMS and ATLAS experiments have discovered a particle which is compatible with the SM Higgs boson. Presented here is the development of one of the discovery channels, $\mathrm{H}\rightarrow\gamma\gamma$, and the final $\mathrm{H}\rightarrow\gamma\gamma$ analysis and results using the full luminosity of the LHC Run 1 dataset $\sim$25 $\mathrm{fb}^{-1}$ at 7 or 8 TeV center of mass energy. The observed (expected) significance of this di-photon excess in the final analysis is $5.7\sigma$ ($5.2\sigma$) with a measured signal strength of $\sigma / \sigma_{SM} = 1.14^{+0.26}_{-0.23}$. The mass of this Higgs boson is not predicted by the SM. Using the $\mathrm{H}\rightarrow\gamma\gamma$ channel, $\mathrm{M}_{\text{H}}$ is measured to be $124.70^{+0.35}_{-0.34}$ GeV. Other measured quantities are presented including the signal strength modifiers of different production mechanisms and spin hypothesis tests between spin-0 and spin-2 models. Searches for this Higgs boson decaying to the di-muon and di-electron states are presented. No excess is observed and universal lepton decays of this particle are therefore ruled out, supporting the SM Higgs boson interpretation. In addition, relevant searches, observations and measurements from CMS that characterize this particle are presented.ProQuest, UMI Dissertations PublishingCERN-THESIS-2014-133oai:cds.cern.ch:19513312014-09-10
spellingShingle Particle Physics - Experiment
Palmer, Christopher
Discovery of the Higgs Boson Decaying to Two Photons
title Discovery of the Higgs Boson Decaying to Two Photons
title_full Discovery of the Higgs Boson Decaying to Two Photons
title_fullStr Discovery of the Higgs Boson Decaying to Two Photons
title_full_unstemmed Discovery of the Higgs Boson Decaying to Two Photons
title_short Discovery of the Higgs Boson Decaying to Two Photons
title_sort discovery of the higgs boson decaying to two photons
topic Particle Physics - Experiment
url http://cds.cern.ch/record/1951331
work_keys_str_mv AT palmerchristopher discoveryofthehiggsbosondecayingtotwophotons