Théorie d'Everettvignette|redresse=1.3|Le paradoxe du chat de Schrödinger dans l’interprétation d’Everett des mondes multiples (many worlds). Ici, chaque évènement est une bifurcation. Le chat est à la fois mort et vivant, avant même l'ouverture de la boite, mais le chat mort et le chat vivant existent dans des bifurcations différentes de l'univers, qui sont tout aussi réelles l'une que l'autre.
Densité surfacique d'énergieLa densité surfacique d'énergie ou énergie surfacique, voire densité énergétique (quand le contexte surfacique est clair), est la quantité d’énergie par une unité de surface. Dans le Système international elle se mesure en J/m (joules par mètre carré). Dans un contexte industriel on l'exprime souvent en kWh/m (kilowatts-heures par mètre carré). Cette grandeur physique est principalement utilisée dans l'étude physique des interfaces entre liquides non miscibles, ou entre liquide et gaz, où elle caractérise l'énergie nécessaire à former une interface d'une certaine surface.
DipoleIn physics, a dipole () is an electromagnetic phenomenon which occurs in two ways: An electric dipole deals with the separation of the positive and negative electric charges found in any electromagnetic system. A simple example of this system is a pair of charges of equal magnitude but opposite sign separated by some typically small distance. (A permanent electric dipole is called an electret.) A magnetic dipole is the closed circulation of an electric current system. A simple example is a single loop of wire with constant current through it.
Moment magnétiqueEn physique, le moment magnétique est une grandeur vectorielle qui permet de caractériser l'intensité d'une source magnétique. Cette source peut être un courant électrique, ou bien un objet aimanté. L'aimantation est la distribution spatiale du moment magnétique. Le moment magnétique d'un corps se manifeste par la tendance qu'a ce corps à s'aligner dans le sens d'un champ magnétique, c'est par exemple le cas de l'aiguille d'une boussole : le moment que subit l'objet est égal au produit vectoriel de son moment magnétique par le champ magnétique dans lequel il est placé.
Tight bindingIn solid-state physics, the tight-binding model (or TB model) is an approach to the calculation of electronic band structure using an approximate set of wave functions based upon superposition of wave functions for isolated atoms located at each atomic site. The method is closely related to the LCAO method (linear combination of atomic orbitals method) used in chemistry. Tight-binding models are applied to a wide variety of solids.
Toroidal momentIn electromagnetism, a toroidal moment is an independent term in the multipole expansion of electromagnetic fields besides magnetic and electric multipoles. In the electrostatic multipole expansion, all charge and current distributions can be expanded into a complete set of electric and magnetic multipole coefficients. However, additional terms arise in an electrodynamic multipole expansion. The coefficients of these terms are given by the toroidal multipole moments as well as time derivatives of the electric and magnetic multipole moments.
Electric dipole momentThe electric dipole moment is a measure of the separation of positive and negative electrical charges within a system, that is, a measure of the system's overall polarity. The SI unit for electric dipole moment is the coulomb-meter (C⋅m). The debye (D) is another unit of measurement used in atomic physics and chemistry. Theoretically, an electric dipole is defined by the first-order term of the multipole expansion; it consists of two equal and opposite charges that are infinitesimally close together, although real dipoles have separated charge.
Local-density approximationLocal-density approximations (LDA) are a class of approximations to the exchange–correlation (XC) energy functional in density functional theory (DFT) that depend solely upon the value of the electronic density at each point in space (and not, for example, derivatives of the density or the Kohn–Sham orbitals). Many approaches can yield local approximations to the XC energy. However, overwhelmingly successful local approximations are those that have been derived from the homogeneous electron gas (HEG) model.
Technological applications of superconductivityTechnological applications of superconductivity include: the production of sensitive magnetometers based on SQUIDs (superconducting quantum interference devices) fast digital circuits (including those based on Josephson junctions and rapid single flux quantum technology), powerful superconducting electromagnets used in maglev trains, magnetic resonance imaging (MRI) and nuclear magnetic resonance (NMR) machines, magnetic confinement fusion reactors (e.g.
Auger electron spectroscopyAuger electron spectroscopy (AES; pronounced oʒe in French) is a common analytical technique used specifically in the study of surfaces and, more generally, in the area of materials science. It is a form of electron spectroscopy that relies on the Auger effect, based on the analysis of energetic electrons emitted from an excited atom after a series of internal relaxation events. The Auger effect was discovered independently by both Lise Meitner and Pierre Auger in the 1920s.