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A Parameter Space Exploration of the Minimal $SU$(5) Unification

We present a phenomenological study of the most minimal realistic <math display="inline"><mi>S</mi><mi>U</mi><mo stretchy="false">(</mo><mn>5</mn><mo stretchy="false">)</mo></math> model that owns i...

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Detalles Bibliográficos
Autores principales: Doršner, Ilja, Džaferović-Mašić, Emina, Saad, Shaikh
Lenguaje:eng
Publicado: 2021
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.104.015023
http://cds.cern.ch/record/2766067
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author Doršner, Ilja
Džaferović-Mašić, Emina
Saad, Shaikh
author_facet Doršner, Ilja
Džaferović-Mašić, Emina
Saad, Shaikh
author_sort Doršner, Ilja
collection CERN
description We present a phenomenological study of the most minimal realistic <math display="inline"><mi>S</mi><mi>U</mi><mo stretchy="false">(</mo><mn>5</mn><mo stretchy="false">)</mo></math> model that owns its predictivity solely to the gauge symmetry and the representational content. The model is built entirely out of the fields residing in the first five lowest dimensional representations that transform nontrivially under the <math display="inline"><mrow><mi>S</mi><mi>U</mi><mo stretchy="false">(</mo><mn>5</mn><mo stretchy="false">)</mo></mrow></math> gauge group. It has 18 real parameters and 14 phases, all in all, to address experimental observables of the Standard Model fermions and accomplishes that via simultaneous use of three different mass generation mechanisms. Furthermore, it inextricably links the origin of the neutrino mass to the experimentally observed difference between the down-type quark and charged lepton masses. The main predictions of the model are that (i) the neutrinos are Majorana particles, (ii) one neutrino is massless, (iii) the neutrinos have normal mass ordering, and (iv) there are four new scalar multiplets at or below a 120 TeV mass scale. A one-loop analysis demonstrates that an improvement of the current <math display="inline"><mi>p</mi><mo stretchy="false">→</mo><msup><mi>π</mi><mn>0</mn></msup><msup><mi>e</mi><mo>+</mo></msup></math> partial lifetime limit by a factor of 2, 15, and 96 would require these four scalar multiplets to reside at or below the 100, 10, and 1 TeV mass scales, respectively.
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spelling cern-27660672023-01-31T08:35:17Zdoi:10.1103/PhysRevD.104.015023http://cds.cern.ch/record/2766067engDoršner, IljaDžaferović-Mašić, EminaSaad, ShaikhA Parameter Space Exploration of the Minimal $SU$(5) Unificationhep-phParticle Physics - PhenomenologyWe present a phenomenological study of the most minimal realistic <math display="inline"><mi>S</mi><mi>U</mi><mo stretchy="false">(</mo><mn>5</mn><mo stretchy="false">)</mo></math> model that owns its predictivity solely to the gauge symmetry and the representational content. The model is built entirely out of the fields residing in the first five lowest dimensional representations that transform nontrivially under the <math display="inline"><mrow><mi>S</mi><mi>U</mi><mo stretchy="false">(</mo><mn>5</mn><mo stretchy="false">)</mo></mrow></math> gauge group. It has 18 real parameters and 14 phases, all in all, to address experimental observables of the Standard Model fermions and accomplishes that via simultaneous use of three different mass generation mechanisms. Furthermore, it inextricably links the origin of the neutrino mass to the experimentally observed difference between the down-type quark and charged lepton masses. The main predictions of the model are that (i) the neutrinos are Majorana particles, (ii) one neutrino is massless, (iii) the neutrinos have normal mass ordering, and (iv) there are four new scalar multiplets at or below a 120 TeV mass scale. A one-loop analysis demonstrates that an improvement of the current <math display="inline"><mi>p</mi><mo stretchy="false">→</mo><msup><mi>π</mi><mn>0</mn></msup><msup><mi>e</mi><mo>+</mo></msup></math> partial lifetime limit by a factor of 2, 15, and 96 would require these four scalar multiplets to reside at or below the 100, 10, and 1 TeV mass scales, respectively.We present phenomenological study of the most minimal realistic $SU(5)$ model that owns its predictivity solely to the gauge symmetry and the representational content. The model is built entirely out of the fields residing in the first five lowest dimensional representations that transform non-trivially under the $SU(5)$ gauge group. It has eighteen real parameters and fourteen phases, all in all, to address experimental observables of the Standard Model fermions and accomplishes that via simultaneous use of three different mass generation mechanisms. Furthermore, it inextricably links the origin of the neutrino mass to the experimentally observed difference between the down-type quark and charged lepton masses. The main predictions of the model are that $(i)$ the neutrinos are Majorana particles, $(ii)$ one neutrino is massless, $(iii)$ the neutrinos have normal mass ordering, and $(iv)$ there are four new scalar multiplets at or below a $120$ TeV mass scale. A one-loop analysis demonstrates that an improvement of the current $p \rightarrow \pi^0 e^+$ partial lifetime limit by a factor of $2$, $15$, and $96$ would require these four scalar multiplets to reside at or below the $100$ TeV, $10$ TeV, and $1$ TeV mass scales, respectively.arXiv:2105.01678oai:cds.cern.ch:27660672021-05-04
spellingShingle hep-ph
Particle Physics - Phenomenology
Doršner, Ilja
Džaferović-Mašić, Emina
Saad, Shaikh
A Parameter Space Exploration of the Minimal $SU$(5) Unification
title A Parameter Space Exploration of the Minimal $SU$(5) Unification
title_full A Parameter Space Exploration of the Minimal $SU$(5) Unification
title_fullStr A Parameter Space Exploration of the Minimal $SU$(5) Unification
title_full_unstemmed A Parameter Space Exploration of the Minimal $SU$(5) Unification
title_short A Parameter Space Exploration of the Minimal $SU$(5) Unification
title_sort parameter space exploration of the minimal $su$(5) unification
topic hep-ph
Particle Physics - Phenomenology
url https://dx.doi.org/10.1103/PhysRevD.104.015023
http://cds.cern.ch/record/2766067
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