Quantum vortexIn physics, a quantum vortex represents a quantized flux circulation of some physical quantity. In most cases, quantum vortices are a type of topological defect exhibited in superfluids and superconductors. The existence of quantum vortices was first predicted by Lars Onsager in 1949 in connection with superfluid helium. Onsager reasoned that quantisation of vorticity is a direct consequence of the existence of a superfluid order parameter as a spatially continuous wavefunction.
Orbital angular momentum of lightThe orbital angular momentum of light (OAM) is the component of angular momentum of a light beam that is dependent on the field spatial distribution, and not on the polarization. It can be further split into an internal and an external OAM. The internal OAM is an origin-independent angular momentum of a light beam that can be associated with a helical or twisted wavefront. The external OAM is the origin-dependent angular momentum that can be obtained as cross product of the light beam position (center of the beam) and its total linear momentum.
Optical vortexAn optical vortex (also known as a photonic quantum vortex, screw dislocation or phase singularity) is a zero of an optical field; a point of zero intensity. The term is also used to describe a beam of light that has such a zero in it. The study of these phenomena is known as singular optics. In an optical vortex, light is twisted like a corkscrew around its axis of travel. Because of the twisting, the light waves at the axis itself cancel each other out.
Moment cinétique (mécanique quantique)En mécanique quantique le moment cinétique est défini comme un opérateur vectoriel (noté ) à trois composantes, correspondant chacune aux différentes dimensions de l'espace (opérateurs « scalaires »). Celles-ci obéissent entre elles à certaines relations de commutation. Ainsi, alors qu'en mécanique classique les trois composantes du moment cinétique peuvent être simultanément mesurées, ceci est impossible dans le cadre quantique.
Nombre quantique du moment angulaire totalEn mécanique quantique, le nombre quantique de moment angulaire total paramétrise le moment angulaire total d'une particule donnée, en combinant son moment angulaire orbital et son moment angulaire intrinsèque, c'est-à-dire son spin. En notant S le spin d'une particule et L son vecteur de moment angulaire orbital, le moment angulaire total J s'écrit : Le nombre quantique associé est le nombre quantique principal de moment angulaire total j.
Angular momentum couplingIn quantum mechanics, the procedure of constructing eigenstates of total angular momentum out of eigenstates of separate angular momenta is called angular momentum coupling. For instance, the orbit and spin of a single particle can interact through spin–orbit interaction, in which case the complete physical picture must include spin–orbit coupling. Or two charged particles, each with a well-defined angular momentum, may interact by Coulomb forces, in which case coupling of the two one-particle angular momenta to a total angular momentum is a useful step in the solution of the two-particle Schrödinger equation.
Moment cinétiqueEn mécanique classique, le moment cinétique (ou moment angulaire par anglicisme) d'un point matériel M par rapport à un point O est le moment de la quantité de mouvement par rapport au point O, c'est-à-dire le produit vectoriel : Le moment cinétique d'un système matériel est la somme des moments cinétiques (par rapport au même point O) des points matériels constituant le système : Cette grandeur, considérée dans un référentiel galiléen, dépend du choix de l'origine O, par suite, il n'est pas possible de com
Exciton-polaritonIn physics the Exciton–polariton is a type of polariton; a hybrid light and matter quasiparticle arising from the strong coupling of the electromagnetic dipolar oscillations of excitons (either in bulk or quantum wells) and photons. Because light excitations are observed classically as photons, which are massless particles, they do not therefore have mass, like a physical particle. This property makes them a quasiparticle.
Nombre quantique secondaireEn mécanique quantique, le nombre quantique secondaire, noté l, également appelé nombre quantique azimutal, est l'un des quatre nombres quantiques décrivant l'état quantique d'un électron dans un atome. Il s'agit d'un nombre entier positif ou nul lié au nombre quantique principal n par la relation : . Il correspond au moment angulaire orbital de l'électron, et définit les sous-couches électroniques des atomes, tandis que le nombre quantique principal n définit les couches électroniques.
Quantum turbulenceQuantum turbulence is the name given to the turbulent flow – the chaotic motion of a fluid at high flow rates – of quantum fluids, such as superfluids. The idea that a form of turbulence might be possible in a superfluid via the quantized vortex lines was first suggested by Richard Feynman. The dynamics of quantum fluids are governed by quantum mechanics, rather than classical physics which govern classical (ordinary) fluids.
Excitonvignette|Représentation schématique d'un exciton de Frenkel, dans un cristal (points noirs). Un exciton est, en physique, une quasi-particule que l'on peut voir comme une paire électron-trou liée par des forces de Coulomb. Une analogie souvent utilisée consiste à comparer l'électron et le trou respectivement à l'électron et au proton d'un atome d'hydrogène. Ce phénomène se produit dans les semi-conducteurs et les isolants. En 2008, le premier dispositif électronique basé sur des excitons a été démontré, fonctionnant à des températures cryogéniques.
Superfluid helium-4Superfluid helium-4 is the superfluid form of helium-4, an isotope of the element helium. A superfluid is a state of matter in which matter behaves like a fluid with zero viscosity. The substance, which looks like a normal liquid, flows without friction past any surface, which allows it to continue to circulate over obstructions and through pores in containers which hold it, subject only to its own inertia. The formation of the superfluid is known to be related to the formation of a Bose–Einstein condensate.
Macroscopic quantum phenomenaMacroscopic quantum phenomena are processes showing quantum behavior at the macroscopic scale, rather than at the atomic scale where quantum effects are prevalent. The best-known examples of macroscopic quantum phenomena are superfluidity and superconductivity; other examples include the quantum Hall effect and topological order. Since 2000 there has been extensive experimental work on quantum gases, particularly Bose–Einstein condensates. Between 1996 and 2016 six Nobel Prizes were given for work related to macroscopic quantum phenomena.
Spin angular momentum of lightThe spin angular momentum of light (SAM) is the component of angular momentum of light that is associated with the quantum spin and the rotation between the polarization degrees of freedom of the photon. Spin is the fundamental property that distinguishes the two types of elementary particles: fermions with half-integer spins and bosons with integer spins. Photons, which are the quanta of light, have been long recognized as spin-1 gauge bosons. The polarization of the light is commonly accepted as its “intrinsic” spin degree of freedom.
Nombre quantique magnétiquevignette|Levée de dégénérescence des niveaux d'énergie électroniques par effet Zeeman. En mécanique quantique, le nombre quantique magnétique, noté m, également appelé nombre quantique tertiaire, est l'un des quatre nombres quantiques décrivant l'état quantique d'un électron dans un atome. Il s'agit d'un nombre entier lié au nombre quantique azimutal l par la relation : . Il correspond à la projection du moment angulaire orbital de l'électron sur l'axe de quantification, et distingue les orbitales atomiques au sein des sous-couches électroniques.
Negative-index metamaterialNegative-index metamaterial or negative-index material (NIM) is a metamaterial whose refractive index for an electromagnetic wave has a negative value over some frequency range. NIMs are constructed of periodic basic parts called unit cells, which are usually significantly smaller than the wavelength of the externally applied electromagnetic radiation. The unit cells of the first experimentally investigated NIMs were constructed from circuit board material, or in other words, wires and dielectrics.
Faisceau gaussienEn optique, un faisceau gaussien est une solution particulière de l'équation de propagation de Helmholtz (au même titre qu'une onde plane) dans le cadre de l'approximation paraxiale. Ce modèle produit une meilleure description de rayonnements cohérents comme les faisceaux lasers bien qu'il soit incomplet dans le traitement de la diffraction. Plus spécifiquement, un faisceau gaussien est un faisceau dont l'évolution du profil transversal d'amplitude en fonction de la propagation spatiale est proportionnel à une fonction gaussienne, par exemple une fonction de Gauss-Hermite.
History of metamaterialsThe history of metamaterials begins with artificial dielectrics in microwave engineering as it developed just after World War II. Yet, there are seminal explorations of artificial materials for manipulating electromagnetic waves at the end of the 19th century. Hence, the history of metamaterials is essentially a history of developing certain types of manufactured materials, which interact at radio frequency, microwave, and later optical frequencies.
Laser pumpingLaser pumping is the act of energy transfer from an external source into the gain medium of a laser. The energy is absorbed in the medium, producing excited states in its atoms. When the number of particles in one excited state exceeds the number of particles in the ground state or a less-excited state, population inversion is achieved. In this condition, the mechanism of stimulated emission can take place and the medium can act as a laser or an optical amplifier. The pump power must be higher than the lasing threshold of the laser.
Surface plasmon polaritonSurface plasmon polaritons (SPPs) are electromagnetic waves that travel along a metal–dielectric or metal–air interface, practically in the infrared or visible-frequency. The term "surface plasmon polariton" explains that the wave involves both charge motion in the metal ("surface plasmon") and electromagnetic waves in the air or dielectric ("polariton"). They are a type of surface wave, guided along the interface in much the same way that light can be guided by an optical fiber.