Alternatives to the Standard Higgs ModelThe Alternative models to the Standard Higgs Model are models which are considered by many particle physicists to solve some of the Higgs boson's existing problems. Two of the most currently researched models are quantum triviality, and Higgs hierarchy problem. Introduction to the Higgs field In particle physics, elementary particles and forces give rise to the world around us. Physicists explain the behaviors of these particles and how they interact using the Standard Model—a widely accepted framework believed to explain most of the world we see around us.
Physique des particulesLa physique des particules ou la physique subatomique est la branche de la physique qui étudie les constituants élémentaires de la matière et les rayonnements, ainsi que leurs interactions. On l'appelle aussi parfois physique des hautes énergies car de nombreuses particules élémentaires, instables, n'existent pas à l'état naturel et peuvent seulement être détectées lors de collisions à hautes énergies entre particules stables dans les accélérateurs de particules.
Physique au-delà du modèle standardLa physique au-delà du modèle standard se rapporte aux développements théoriques de la physique des particules nécessaires pour expliquer les défaillances du modèle standard, telles que l'origine de la masse, le problème de la violation CP de l'interaction forte, les oscillations des neutrinos, l'asymétrie matière-antimatière, et la nature de la matière noire et de l'énergie noire.
Electroweak scaleIn particle physics, the electroweak scale, also known as the Fermi scale, is the energy scale around 246 GeV, a typical energy of processes described by the electroweak theory. The particular number 246 GeV is taken to be the vacuum expectation value of the Higgs field (where is the Fermi coupling constant). In some cases the term electroweak scale is used to refer to the temperature of electroweak symmetry breaking, 159.5±1.5 GeV In other cases, the term is used more loosely to refer to energies in a broad range around 102 - 103 GeV.
InflatonL'inflaton, également appelé « faux vide » ou « champ scalaire primordial », est la forme d'une matière hypothétique responsable de l'inflation cosmique, cette époque où l'Univers a grandi de façon colossale. Du point de vue de la physique des particules, il s'agit d'un hypothétique champ scalaire, à l'instar du champ de Higgs électrofaible, mais qui est doté d'une dynamique très différente. Le terme « inflaton » suit le style de dénomination typique d'autres particules quantiques (comme le photon, le gluon, le boson et le fermion), et dérive du mot inflation.
Exigence (ingénierie)Une est, dans le domaine de l'ingénierie, un besoin, une nécessité, une attente auquel un produit ou un service doit répondre ou une contrainte qu'il doit satisfaire. L'exigence peut être exprimée par une partie prenante (utilisateur, client, commercial, analyste de marchés, gestionnaire de produits, etc.) ou déterminée par les processus d'ingénierie et en particulier les activités d'études. L'approche commune à tous les domaines d'ingénierie est de définir les besoins, d'envisager des solutions, et de livrer la solution la plus appropriée.
Superfluid vacuum theorySuperfluid vacuum theory (SVT), sometimes known as the BEC vacuum theory, is an approach in theoretical physics and quantum mechanics where the fundamental physical vacuum (non-removable background) is considered as a superfluid or as a Bose–Einstein condensate (BEC). The microscopic structure of this physical vacuum is currently unknown and is a subject of intensive studies in SVT.
Physical cosmologyPhysical cosmology is a branch of cosmology concerned with the study of cosmological models. A cosmological model, or simply cosmology, provides a description of the largest-scale structures and dynamics of the universe and allows study of fundamental questions about its origin, structure, evolution, and ultimate fate. Cosmology as a science originated with the Copernican principle, which implies that celestial bodies obey identical physical laws to those on Earth, and Newtonian mechanics, which first allowed those physical laws to be understood.
Mathematical formulation of the Standard ModelThis article describes the mathematics of the Standard Model of particle physics, a gauge quantum field theory containing the internal symmetries of the unitary product group SU(3) × SU(2) × U(1). The theory is commonly viewed as describing the fundamental set of particles – the leptons, quarks, gauge bosons and the Higgs boson. The Standard Model is renormalizable and mathematically self-consistent, however despite having huge and continued successes in providing experimental predictions it does leave some unexplained phenomena.
Neutral particleIn physics, a neutral particle is a particle without an electric charge, such as a neutron. The term neutral particles should not be confused with truly neutral particles, the subclass of neutral particles that are also identical to their own antiparticles. Long-lived neutral particles provide a challenge in the construction of particle detectors, because they do not interact electromagnetically, except possibly through their magnetic moments. This means that they do not leave tracks of ionized particles or curve in magnetic fields.