Amplificateur optiqueEn optique, on appelle amplificateur optique un dispositif qui amplifie un signal lumineux sans avoir besoin de le convertir d'abord en signal électrique avant de l'amplifier avec les techniques classiques de l'électronique. Un amplificateur à fibre dopée fonctionne à la manière d'un laser. Une portion de fibre optique est dopée et est pompée optiquement avec un laser afin de placer les ions de dopage dans un état excité.
Communication optiqueLa communication optique désigne les télécommunications utilisant des moyens, matériaux ou instruments d'optique. Le , le prix Nobel de physique est attribué à l'Américano-Britannique Charles Kao pour « une avancée dans le domaine de la transmission de la lumière dans les fibres pour la communication optique » ainsi que l'Américano-Canadien Willard Boyle et l'Américain George Smith pour « l'invention d'un circuit semi-conducteur d'images, le capteur CCD ». signaux de fumée fibre optique langue des signes t
Fiber laserA fiber laser (or fibre laser in Commonwealth English) is a laser in which the active gain medium is an optical fiber doped with rare-earth elements such as erbium, ytterbium, neodymium, dysprosium, praseodymium, thulium and holmium. They are related to doped fiber amplifiers, which provide light amplification without lasing. Fiber nonlinearities, such as stimulated Raman scattering or four-wave mixing can also provide gain and thus serve as gain media for a fiber laser.
Laserthumb|250px|Lasers rouges (660 & ), verts (532 & ) et bleus (445 & ). thumb|250px|Rayon laser à travers un dispositif optique. thumb|250px|Démonstration de laser hélium-néon au laboratoire Kastler-Brossel à l'Université Pierre-et-Marie-Curie. Un laser (acronyme issu de l'anglais light amplification by stimulated emission of radiation qui signifie « amplification de la lumière par émission stimulée de radiation ») est un système photonique.
Double-clad fiberDouble-clad fiber (DCF) is a class of optical fiber with a structure consisting of three layers of optical material instead of the usual two. The inner-most layer is called the core. It is surrounded by the inner cladding, which is surrounded by the outer cladding. The three layers are made of materials with different refractive indices. There are two different kinds of double-clad fibers. The first was developed early in optical fiber history with the purpose of engineering the dispersion of optical fibers.
Raman amplificationRaman amplification ˈrɑːmən is based on the stimulated Raman scattering (SRS) phenomenon, when a lower frequency 'signal' photon induces the inelastic scattering of a higher-frequency 'pump' photon in an optical medium in the nonlinear regime. As a result of this, another 'signal' photon is produced, with the surplus energy resonantly passed to the vibrational states of the medium. This process, as with other stimulated emission processes, allows all-optical amplification.
Ordinateur optiqueUn ordinateur optique (ou ordinateur photonique) est un ordinateur numérique qui utilise des photons pour le traitement des informations, alors que les ordinateurs conventionnels utilisent des électrons. Les photons ont la particularité de ne pas créer d’interférence magnétique, de ne pas générer de chaleur et de se propager très rapidement. Les transistors optiques sont beaucoup plus rapides que les transistors électroniques. Des ordinateurs optiques pourraient être plus puissants que les ordinateurs conventionnels actuels.
Spatial resolutionIn physics and geosciences, the term spatial resolution refers to distance between independent measurements, or the physical dimension that represents a pixel of the image. While in some instruments, like cameras and telescopes, spatial resolution is directly connected to angular resolution, other instruments, like synthetic aperture radar or a network of weather stations, produce data whose spatial sampling layout is more related to the Earth's surface, such as in remote sensing and .
Image resolutionImage resolution is the level of detail an holds. The term applies to digital images, film images, and other types of images. "Higher resolution" means more image detail. Image resolution can be measured in various ways. Resolution quantifies how close lines can be to each other and still be visibly resolved. Resolution units can be tied to physical sizes (e.g. lines per mm, lines per inch), to the overall size of a picture (lines per picture height, also known simply as lines, TV lines, or TVL), or to angular subtense.
Yield (engineering)In materials science and engineering, the yield point is the point on a stress-strain curve that indicates the limit of elastic behavior and the beginning of plastic behavior. Below the yield point, a material will deform elastically and will return to its original shape when the applied stress is removed. Once the yield point is passed, some fraction of the deformation will be permanent and non-reversible and is known as plastic deformation.