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.
Digital microscopeA digital microscope is a variation of a traditional optical microscope that uses optics and a digital camera to output an image to a monitor, sometimes by means of software running on a computer. A digital microscope often has its own in-built LED light source, and differs from an optical microscope in that there is no provision to observe the sample directly through an eyepiece. Since the image is focused on the digital circuit, the entire system is designed for the monitor image. The optics for the human eye are omitted.
Nano-argentvignette|Nanoparticules d'argent, vues au microscope électronique. Le est un nanomatériau à base d'atomes d'argent, produit sous forme de nanoparticules par des nanotechnologies. En solution, il porte le nom d'. En 2008, selon les producteurs, environ /an de nano-argent auraient déjà été produites dans le monde, sous forme d'ions argent, de particules d’argent protéinées (silver proteins) ou de colloïdes utilisés comme biocide.
Particle beamA particle beam is a stream of charged or neutral particles. In particle accelerators, these particles can move with a velocity close to the speed of light. There is a difference between the creation and control of charged particle beams and neutral particle beams, as only the first type can be manipulated to a sufficient extent by devices based on electromagnetism. The manipulation and diagnostics of charged particle beams at high kinetic energies using particle accelerators are main topics of accelerator physics.
Émission thermoioniqueUne émission thermoïonique (ou émission thermoélectronique) est un flux d'électrons provenant d'un métal ou d'un oxyde métallique, qui est provoqué par les vibrations des atomes dues à l'énergie thermique lorsque ceux-ci parviennent à surmonter les forces électrostatiques. L'effet croît de manière importante avec l'augmentation de la température, mais est toujours présent pour les températures au-dessus du zéro absolu. Les particules chargées étaient appelées « thermions » avant que l'on découvre qu'il s'agissait d'électrons.
Electron emissionIn physics, electron emission is the ejection of an electron from the surface of matter, or, in beta decay (β− decay), where a beta particle (a fast energetic electron or positron) is emitted from an atomic nucleus transforming the original nuclide to an isobar. Beta decay In Beta decay (β− decay), radioactive decay results in a beta particle (fast energetic electron or positron in β+ decay) being emitted from the nucleus Thermionic emission and Field electron emission Thermionic emission, the liberation o
Electron tomographyElectron tomography (ET) is a tomography technique for obtaining detailed 3D structures of sub-cellular, macro-molecular, or materials specimens. Electron tomography is an extension of traditional transmission electron microscopy and uses a transmission electron microscope to collect the data. In the process, a beam of electrons is passed through the sample at incremental degrees of rotation around the center of the target sample. This information is collected and used to assemble a three-dimensional image of the target.
Laser drillingLaser drilling is the process of creating thru-holes, referred to as “popped” holes or “percussion drilled” holes, by repeatedly pulsing focused laser energy on a material. The diameter of these holes can be as small as 0.002” (~50 μm). If larger holes are required, the laser is moved around the circumference of the “popped” hole until the desired diameter is created. Laser drilling is one of the few techniques for producing high-aspect-ratio holes—holes with a depth-to-diameter ratio much greater than 10:1.
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.
Horloge atomiquevignette|Horloge atomique commerciale à césium ayant servi à réaliser le temps légal français dans les années 1980 et comme référence pour l'horloge parlante. vignette|Horloge atomique à césium, vue interne. Une horloge atomique est une horloge qui utilise la pérennité et l'immuabilité de la fréquence du rayonnement électromagnétique émis par un électron lors du passage d'un niveau d'énergie à un autre pour assurer l'exactitude et la stabilité du signal oscillant qu'elle produit.