Particule ponctuelleUne particule ponctuelle (particule idéale ou particule quasi-ponctuelle) est un objet idéalisé très utilisé en physique. Une des caractéristiques principales d'une particule ponctuelle est qu'il lui manque l'extension spatiale : de dimension zéro, elle n'occupe aucun volume. C'est une représentation appropriée de tout objet dont la définition de la taille, de la forme et de la structure n'est pas pertinente dans un contexte donné. Par exemple, si l'observateur se place suffisamment loin, un objet de forme quelconque ressemblera et se comportera comme un objet ponctuel.
Thermodynamique quantiqueLa thermodynamique quantique est l'extension de la thermodynamique aux phénomènes quantiques. Elle se distingue de la physique statistique quantique par l'accent mis sur les processus dynamiques hors d'équilibre ainsi que par son éventuelle application à un système quantique individuel. Annoncée par les travaux d'Einstein sur la quantification du rayonnement et de Planck sur le rayonnement du corps noir, la thermodynamique quantique n'a commencé à être constituée en théorie autonome qu'à la fin des années 2010 et reste incomplète en .
Energy operatorIn quantum mechanics, energy is defined in terms of the energy operator, acting on the wave function of the system as a consequence of time translation symmetry. It is given by: It acts on the wave function (the probability amplitude for different configurations of the system) The energy operator corresponds to the full energy of a system. The Schrödinger equation describes the space- and time-dependence of the slow changing (non-relativistic) wave function of a quantum system.
Even and odd atomic nucleiIn nuclear physics, properties of a nucleus depend on evenness or oddness of its atomic number (proton number) Z, neutron number N and, consequently, of their sum, the mass number A. Most importantly, oddness of both Z and N tends to lower the nuclear binding energy, making odd nuclei generally less stable. This effect is not only experimentally observed, but is included in the semi-empirical mass formula and explained by some other nuclear models, such as the nuclear shell model.
Electron scatteringElectron scattering occurs when electrons are displaced from their original trajectory. This is due to the electrostatic forces within matter interaction or, if an external magnetic field is present, the electron may be deflected by the Lorentz force. This scattering typically happens with solids such as metals, semiconductors and insulators; and is a limiting factor in integrated circuits and transistors.
Free particleIn physics, a free particle is a particle that, in some sense, is not bound by an external force, or equivalently not in a region where its potential energy varies. In classical physics, this means the particle is present in a "field-free" space. In quantum mechanics, it means the particle is in a region of uniform potential, usually set to zero in the region of interest since the potential can be arbitrarily set to zero at any point in space. The classical free particle is characterized by a fixed velocity v.
Solide de révolutionEn géométrie, un solide de révolution est engendré par une surface plane fermée tournant autour d'un axe situé dans le même plan qu'elle et ne possédant en commun avec elle aucun point ou seulement des points de sa frontière. Parmi les solides de révolution, on peut citer : la boule ; le cylindre circulaire droit ; le cône circulaire droit ; le tore ; l'ellipsoïde (de révolution). Tout plan contenant l'axe de rotation découpe sur la surface de révolution un méridien.
Conserved quantityA conserved quantity is a property or value that remains constant over time in a system even while changes occur in the system. In mathematics, a conserved quantity of a dynamical system is formally defined as a function of the dependent variables, the value of which remains constant along each trajectory of the system. Not all systems have conserved quantities, and conserved quantities are not unique, since one can always produce another such quantity by applying a suitable function, such as adding a constant, to a conserved quantity.
CocrystalIn materials science (specifically crystallography), cocrystals are "solids that are crystalline, single-phase materials composed of two or more different molecular or ionic compounds generally in a stoichiometric ratio which are neither solvates nor simple salts." A broader definition is that cocrystals "consist of two or more components that form a unique crystalline structure having unique properties." Several subclassifications of cocrystals exist.