Force nucléaireLa force nucléaire, qui s'exerce entre nucléons, est responsable de la liaison des protons et des neutrons dans les noyaux atomiques. Elle peut être interprétée en termes d'échanges de mésons légers, comme les pions. Même si son existence est démontrée depuis les années 1930, les scientifiques n'ont pas réussi à établir une loi permettant de calculer sa valeur à partir de paramètres connus, contrairement aux lois de Coulomb et de Newton.
Saveur (physique)La saveur, en physique des particules, est une caractéristique permettant de distinguer différents types de leptons et de quarks, deux sous-familles des fermions. Les leptons se déclinent en trois saveurs et les quarks en six saveurs. Les saveurs permettent de distinguer certaines classes de particules dont les autres propriétés (charge électrique, interactivité) sont similaires. Les dénominations des saveurs ont été introduites par Murray Gell-Mann, baptisant le quark étrange lors de la détection du kaon en 1964.
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.
Interaction élémentaireQuatre interactions élémentaires sont responsables de tous les phénomènes physiques observés dans l'Univers, chacune se manifestant par une force dite force fondamentale. Ce sont l'interaction nucléaire forte, l'interaction électromagnétique, l'interaction faible et l'interaction gravitationnelle. En physique classique, les lois de la gravitation et de l'électromagnétisme étaient considérées comme axiomes.
Static forces and virtual-particle exchangeStatic force fields are fields, such as a simple electric, magnetic or gravitational fields, that exist without excitations. The most common approximation method that physicists use for scattering calculations can be interpreted as static forces arising from the interactions between two bodies mediated by virtual particles, particles that exist for only a short time determined by the uncertainty principle. The virtual particles, also known as force carriers, are bosons, with different bosons associated with each force.
Strangeness and quark–gluon plasmaIn high-energy nuclear physics, strangeness production in relativistic heavy-ion collisions is a signature and diagnostic tool of quark–gluon plasma (QGP) formation and properties. Unlike up and down quarks, from which everyday matter is made, heavier quark flavors such as strange and charm typically approach chemical equilibrium in a dynamic evolution process. QGP (also known as quark matter) is an interacting localized assembly of quarks and gluons at thermal (kinetic) and not necessarily chemical (abundance) equilibrium.
Physics applications of asymptotically safe gravityThe asymptotic safety approach to quantum gravity provides a nonperturbative notion of renormalization in order to find a consistent and predictive quantum field theory of the gravitational interaction and spacetime geometry. It is based upon a nontrivial fixed point of the corresponding renormalization group (RG) flow such that the running coupling constants approach this fixed point in the ultraviolet (UV) limit. This suffices to avoid divergences in physical observables.
Beta function (physics)In theoretical physics, specifically quantum field theory, a beta function, β(g), encodes the dependence of a coupling parameter, g, on the energy scale, μ, of a given physical process described by quantum field theory. It is defined as and, because of the underlying renormalization group, it has no explicit dependence on μ, so it only depends on μ implicitly through g. This dependence on the energy scale thus specified is known as the running of the coupling parameter, a fundamental feature of scale-dependence in quantum field theory, and its explicit computation is achievable through a variety of mathematical techniques.
Force carrierIn quantum field theory, a force carrier (also known as a messenger particle, intermediate particle, or exchange particle) is a type of particle that gives rise to forces between other particles. These particles serve as the quanta of a particular kind of physical field. Wave–particle duality Quantum field theories describe nature in terms of fields. Each field has a complementary description as the set of particles of a particular type.
Chirality (physics)A chiral phenomenon is one that is not identical to its (see the article on mathematical chirality). The spin of a particle may be used to define a handedness, or helicity, for that particle, which, in the case of a massless particle, is the same as chirality. A symmetry transformation between the two is called parity transformation. Invariance under parity transformation by a Dirac fermion is called chiral symmetry. Helicity (particle physics) The helicity of a particle is positive (“right-handed”) if the direction of its spin is the same as the direction of its motion.
Desert (particle physics)In the Grand Unified Theory of particle physics (GUT), the desert refers to a theorized gap in energy scales, between approximately the electroweak energy scale–conventionally defined as roughly the vacuum expectation value or VeV of the Higgs field (about 246 GeV)–and the GUT scale, in which no unknown interactions appear. It can also be described as a gap in the lengths involved, with no new physics below 10−18 m (the currently probed length scale) and above 10−31 m (the GUT length scale).
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.