Phase-contrast X-ray imagingPhase-contrast X-ray imaging or phase-sensitive X-ray imaging is a general term for different technical methods that use information concerning changes in the phase of an X-ray beam that passes through an object in order to create its images. Standard X-ray imaging techniques like radiography or computed tomography (CT) rely on a decrease of the X-ray beam's intensity (attenuation) when traversing the sample, which can be measured directly with the assistance of an X-ray detector.
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.
Phase-contrast imagingPhase-contrast imaging is a method of that has a range of different applications. It measures differences in the refractive index of different materials to differentiate between structures under analysis. In conventional light microscopy, phase contrast can be employed to distinguish between structures of similar transparency, and to examine crystals on the basis of their double refraction. This has uses in biological, medical and geological science.
MicroscopieLa microscopie est un ensemble de techniques d' des objets de petites dimensions. Quelle que soit la technique employée, l'appareil utilisé pour rendre possible cette observation est appelé un . Des mots grecs anciens mikros et skopein signifiant respectivement « petit » et « examiner », la microscopie désigne étymologiquement l'observation d'objets invisibles à l'œil nu. On distingue principalement trois types de microscopies : la microscopie optique, la microscopie électronique et la microscopie à sonde locale.
Angular momentum of lightThe angular momentum of light is a vector quantity that expresses the amount of dynamical rotation present in the electromagnetic field of the light. While traveling approximately in a straight line, a beam of light can also be rotating (or "spinning, or "twisting) around its own axis. This rotation, while not visible to the naked eye, can be revealed by the interaction of the light beam with matter. There are two distinct forms of rotation of a light beam, one involving its polarization and the other its wavefront shape.
Microscope optiqueLe microscope optique ou microscope photonique est un instrument d'optique muni d'un objectif et d'un oculaire qui permet de grossir l'image d'un objet de petites dimensions (ce qui caractérise sa puissance optique) et de séparer les détails de cette image (et son pouvoir de résolution) afin qu'il soit observable par l'œil humain. Il est utilisé en biologie, pour observer les cellules, les tissus, en pétrographie pour reconnaître les roches, en métallurgie et en métallographie pour examiner la structure d'un métal ou d'un alliage.
HolographieL'holographie est un procédé d'enregistrement de la phase et de l'amplitude de l'onde diffractée par un objet. Ce procédé d'enregistrement permet de restituer ultérieurement une image en trois dimensions de l'objet. Ceci est réalisé en utilisant les propriétés de la lumière cohérente issue des lasers. Le mot « holographie » vient du grec holos (« en entier ») et graphein (« écrire »). Holographie signifie donc « tout représenter ».
Femtosecond pulse shapingIn optics, femtosecond pulse shaping refers to manipulations with temporal profile of an ultrashort laser pulse. Pulse shaping can be used to shorten/elongate the duration of optical pulse, or to generate complex pulses. Generation of sequences of ultrashort optical pulses is key in realizing ultra high speed optical networks, Optical Code Division Multiple Access (OCDMA) systems, chemical and biological reaction triggering and monitoring etc.
Pulse shapingIn electronics and telecommunications, pulse shaping is the process of changing a transmitted pulses' waveform to optimize the signal for its intended purpose or the communication channel. This is often done by limiting the bandwidth of the transmission and filtering the pulses to control intersymbol interference. Pulse shaping is particularly important in RF communication for fitting the signal within a certain frequency band and is typically applied after line coding and modulation.
Ultrashort pulseIn optics, an ultrashort pulse, also known as an ultrafast event, is an electromagnetic pulse whose time duration is of the order of a picosecond (10−12 second) or less. Such pulses have a broadband optical spectrum, and can be created by mode-locked oscillators. Amplification of ultrashort pulses almost always requires the technique of chirped pulse amplification, in order to avoid damage to the gain medium of the amplifier. They are characterized by a high peak intensity (or more correctly, irradiance) that usually leads to nonlinear interactions in various materials, including air.