Testing the change of flavour in the production of higgs bosons at the LHeC and the LHC

"The Standard Model (SM) of particle physics is a quantum field theory that describes the fundamental interactions between elementary particles. Over the years, experiments have confirmed its predictions with remarkable precision, providing a detailed understanding of the nature of matter and t...

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Detalles Bibliográficos
Autores: ROSADO NAVARRO, SEBASTIAN; 374811, Rosado Navarro, Sebastián
Tipo de recurso: tesis doctoral
Estado:Versión publicada
Fecha de publicación:2020
País:México
Institución:Benemérita Universidad Autónoma de Puebla
Repositorio:Repositorio Institucional de Acceso Abierto RIAA-BUAP
Idioma:inglés
OAI Identifier:oai:repositorioinstitucional.buap.mx:20.500.12371/27094
Acceso en línea:https://hdl.handle.net/20.500.12371/27094
Access Level:acceso abierto
Palabra clave:CIENCIAS FÍSICO MATEMÁTICAS Y CIENCIAS DE LA TIERRA
Física--Nuclear y de partículas--Física de partículas elementales
Física--Física nuclear y de partículas--Física de partículas elementales--Temas especiales--Dinámica cuántica de sabores
Partículas (Física nuclear)--Experimentos
Colisiones (física nuclear)
Descripción
Sumario:"The Standard Model (SM) of particle physics is a quantum field theory that describes the fundamental interactions between elementary particles. Over the years, experiments have confirmed its predictions with remarkable precision, providing a detailed understanding of the nature of matter and the forces that govern it. According to the SM, elementary particles are divided into two main classes: fermions, which make up matter, and bosons, which mediate interactions. The objective is to gain a comprehensive understanding of the Standard Model (SM) of particle physics, focusing on its three primary sectors: the fermionic sector, the gauge sector, and the scalar sector, while emphasizing the role of the Higgs mechanism in spontaneous symmetry breaking (SSB). This involves studying the interactions of elementary particles such as quarks and leptons, the gauge bosons that mediate the fundamental forces, and the Higgs field responsible for giving mass to the W and Z bosons".