Potentiel électriqueLe potentiel électrique, exprimé en volts (symbole : V), est l'une des grandeurs définissant l'état électrique d'un point de l'espace. Il correspond à l'énergie potentielle électrostatique que posséderait une charge électrique unitaire située en ce point, c'est-à-dire à l'énergie potentielle (mesurée en joules) d'une particule chargée en ce point divisée par la charge (mesurée en coulombs) de la particule.
Iron oxide nanoparticleIron oxide nanoparticles are iron oxide particles with diameters between about 1 and 100 nanometers. The two main forms are composed of magnetite () and its oxidized form maghemite (γ-). They have attracted extensive interest due to their superparamagnetic properties and their potential applications in many fields (although cobalt and nickel are also highly magnetic materials, they are toxic and easily oxidized) including molecular imaging.
Nonlinear metamaterialA nonlinear metamaterial is an artificially constructed material that can exhibit properties not yet found in nature. Its response to electromagnetic radiation can be characterized by its permittivity and material permeability. The product of the permittivity and permeability results in the refractive index. Unlike natural materials, nonlinear metamaterials can produce a negative refractive index. These can also produce a more pronounced nonlinear response than naturally occurring materials.
Optical autocorrelationIn optics, various autocorrelation functions can be experimentally realized. The field autocorrelation may be used to calculate the spectrum of a source of light, while the intensity autocorrelation and the interferometric autocorrelation are commonly used to estimate the duration of ultrashort pulses produced by modelocked lasers. The laser pulse duration cannot be easily measured by optoelectronic methods, since the response time of photodiodes and oscilloscopes are at best of the order of 200 femtoseconds, yet laser pulses can be made as short as a few femtoseconds.
Silicon photonicsSilicon photonics is the study and application of photonic systems which use silicon as an optical medium. The silicon is usually patterned with sub-micrometre precision, into microphotonic components. These operate in the infrared, most commonly at the 1.55 micrometre wavelength used by most fiber optic telecommunication systems. The silicon typically lies on top of a layer of silica in what (by analogy with a similar construction in microelectronics) is known as silicon on insulator (SOI).
Nanoparticle–biomolecule conjugateA nanoparticle–biomolecule conjugate is a nanoparticle with biomolecules attached to its surface. Nanoparticles are minuscule particles, typically measured in nanometers (nm), that are used in nanobiotechnology to explore the functions of biomolecules. Properties of the ultrafine particles are characterized by the components on their surfaces more so than larger structures, such as cells, due to large surface area-to-volume ratios. Large surface area-to-volume-ratios of nanoparticles optimize the potential for interactions with biomolecules.
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.
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.
Mathematical descriptions of the electromagnetic fieldThere are various mathematical descriptions of the electromagnetic field that are used in the study of electromagnetism, one of the four fundamental interactions of nature. In this article, several approaches are discussed, although the equations are in terms of electric and magnetic fields, potentials, and charges with currents, generally speaking. Classical electromagnetism The most common description of the electromagnetic field uses two three-dimensional vector fields called the electric field and the magnetic field.
Convertisseur basEn optique quantique, une conversion paramétrique descendante spontanée (Spontaneous parametric down-conversion en anglais) est un procédé d'optique non linéaire permettant d'obtenir deux photons corrélés à partir d'un seul photon "pompe". Ce processus est un des plus importants pour générer des états non classiques de la lumière, grandement utilisé en optique quantique pour générer des états de Fock, des paires de photons intriqués et est utilisé dans de nombreuses expériences permettant de vérifier les prédictions de la mécanique quantique, comme l'expérience de la gomme quantique, l'expérience de la gomme quantique à choix retardé, etc.