Fr. 135.00

Higgs, Supersymmetry and Dark Matter After Run I of the LHC

Anglais · Livre Relié

Expédition généralement dans un délai de 6 à 7 semaines

Description

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This work was nominated as an outstanding PhD thesis by the LPSC, Université Grenoble Alpes, France. The LHC Run 1 was a milestone in particle physics, leading to the discovery of the Higgs boson, the last missing piece of the so-called "Standard Model" (SM), and to important constraints on new physics, which challenge popular theories like weak-scale supersymmetry.
This thesis provides a detailed account of the legacy of the LHC Run 1   ¥regarding these aspects. First, the SM and the need for its extension are presented in a concise yet revealing way. Subsequently, the impact of the LHC Higgs results on scenarios of new physics is assessed in detail, including a careful discussion of the relevant uncertainties. Two approaches are considered: generic modifications of the Higgs couplings, possibly arising from extended Higgs sectors or higher-dimensional operators; and tests of specific new physics models. Lastly, the implications of the null results of the searches for new physics are discussed with a particular focus on supersymmetric dark matter candidates. Here as well, two approaches are presented: the "simplified models" approach, and recasting by event simulation. This thesis stands out for its educational approach, its clear language and the depth of the physics discussion. The methods and tools presented offer readers essential practical tools for future research.    

Table des matières

Introduction.- At Least a Higgs Boson.- Interpreting LHC Searches for New Physics.- Conclusions. 

Résumé

This work was nominated as an outstanding PhD thesis by the LPSC, Université Grenoble Alpes, France. The LHC Run 1 was a milestone in particle physics, leading to the discovery of the Higgs boson, the last missing piece of the so-called "Standard Model" (SM), and to important constraints on new physics, which challenge popular theories like weak-scale supersymmetry.
This thesis provides a detailed account of the legacy of the LHC Run 1  ≤¥regarding these aspects. First, the SM and the need for its extension are presented in a concise yet revealing way. Subsequently, the impact of the LHC Higgs results on scenarios of new physics is assessed in detail, including a careful discussion of the relevant uncertainties. Two approaches are considered: generic modifications of the Higgs couplings, possibly arising from extended Higgs sectors or higher-dimensional operators; and tests of specific new physics models. Lastly, the implications of the null results of the searches for new physics are discussed with a particular focus on supersymmetric dark matter candidates. Here as well, two approaches are presented: the "simplified models" approach, and recasting by event simulation. This thesis stands out for its educational approach, its clear language and the depth of the physics discussion. The methods and tools presented offer readers essential practical tools for future research.    

Détails du produit

Auteurs Béranger Dumont
Edition Springer, Berlin
 
Langues Anglais
Format d'édition Livre Relié
Sortie 01.01.2016
 
EAN 9783319449555
ISBN 978-3-31-944955-5
Pages 259
Dimensions 162 mm x 243 mm x 30 mm
Poids 532 g
Illustrations XVII, 259 p. 95 illus., 50 illus. in color.
Thèmes Springer Theses
Springer Theses
Catégories Sciences naturelles, médecine, informatique, technique > Physique, astronomie > Physique théorique

B, String Theory, Theoretical, Mathematical and Computational Physics, Physics and Astronomy, Quantum field theory, Elementary particles (Physics), Elementary Particles, Quantum Field Theory, Statistical physics, Quantum Field Theories, String Theory

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