Metamaterial antennaMetamaterial antennas are a class of antennas which use metamaterials to increase performance of miniaturized (electrically small) antenna systems. Their purpose, as with any electromagnetic antenna, is to launch energy into free space. However, this class of antenna incorporates metamaterials, which are materials engineered with novel, often microscopic, structures to produce unusual physical properties. Antenna designs incorporating metamaterials can step-up the antenna's radiated power.
MétamatériauEn physique, en électromagnétisme, le terme métamatériau désigne un matériau composite artificiel qui présente des propriétés électromagnétiques qu'on ne retrouve pas dans un matériau naturel. Il s'agit en général de structures périodiques, diélectriques ou métalliques, qui se comportent comme un matériau homogène n'existant pas à l'état naturel. Il existe plusieurs types de métamatériaux en électromagnétisme, les plus connus étant ceux susceptibles de présenter à la fois une permittivité et une perméabilité négatives.
Métamatériaux acoustiquesLes métamatériaux acoustiques sont des matériaux artificiels développés pour contrôler et manipuler les ondes acoustiques pouvant se propager dans des gaz, des liquides ou des solides. Initialement, ce domaine d'étude provient de la recherche de matériaux à indice de réfraction négatifs. Le contrôle des différentes formes d'ondes acoustiques ainsi générées est principalement réalisé grâce au contrôle du module d'élasticité β, de la densité ρ, ou de la .
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.
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.
Metamaterial cloakingMetamaterial cloaking is the usage of metamaterials in an invisibility cloak. This is accomplished by manipulating the paths traversed by light through a novel optical material. Metamaterials direct and control the propagation and transmission of specified parts of the light spectrum and demonstrate the potential to render an object seemingly invisible. Metamaterial cloaking, based on transformation optics, describes the process of shielding something from view by controlling electromagnetic radiation.
Terahertz metamaterialA terahertz metamaterial is a class of composite metamaterials designed to interact at terahertz (THz) frequencies. The terahertz frequency range used in materials research is usually defined as 0.1 to 10 THz. This bandwidth is also known as the terahertz gap because it is noticeably underutilized. This is because terahertz waves are electromagnetic waves with frequencies higher than microwaves but lower than infrared radiation and visible light.
Tunable metamaterialA tunable metamaterial is a metamaterial with a variable response to an incident electromagnetic wave. This includes remotely controlling how an incident electromagnetic wave (EM wave) interacts with a metamaterial. This translates into the capability to determine whether the EM wave is transmitted, reflected, or absorbed. In general, the lattice structure of the tunable metamaterial is adjustable in real time, making it possible to reconfigure a metamaterial device during operation.
Seismic metamaterialA seismic metamaterial, is a metamaterial that is designed to counteract the adverse effects of seismic waves on artificial structures, which exist on or near the surface of the earth. Current designs of seismic metamaterials utilize configurations of boreholes, trees or proposed underground resonators to act as a large scale material. Experiments have observed both reflections and bandgap attenuation from artificially induced seismic waves.
Photonic metamaterialA photonic metamaterial (PM), also known as an optical metamaterial, is a type of electromagnetic metamaterial, that interacts with light, covering terahertz (THz), infrared (IR) or visible wavelengths. The materials employ a periodic, cellular structure. The subwavelength periodicity distinguishes photonic metamaterials from photonic band gap or photonic crystal structures. The cells are on a scale that is magnitudes larger than the atom, yet much smaller than the radiated wavelength, are on the order of nanometers.
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.
Metamaterial absorberA metamaterial absorber is a type of metamaterial intended to efficiently absorb electromagnetic radiation such as light. Furthermore, metamaterials are an advance in materials science. Hence, those metamaterials that are designed to be absorbers offer benefits over conventional absorbers such as further miniaturization, wider adaptability, and increased effectiveness. Intended applications for the metamaterial absorber include emitters, photodetectors, sensors, spatial light modulators, infrared camouflage, wireless communication, and use in solar photovoltaics and thermophotovoltaics.
SuperlentilleUne superlentille est une lentille optique élaborée avec des métamatériaux et permettant de distinguer des détails jusqu'à vingt fois inférieurs à la longueur d'onde d'utilisation. Une lentille classique est dite « limitée par la diffraction », c'est-à-dire que l'image la plus petite que l'on pourra obtenir sera toujours une tache d'Airy et donc possède un diamètre dépendant du diamètre de la lentille et de la longueur d'onde d'utilisation, limitant l'utilisation de lentilles classiques en verre optique à l'observation d'objet de quelques centaines de nanomètres.
Surface waveIn physics, a surface wave is a mechanical wave that propagates along the interface between differing media. A common example is gravity waves along the surface of liquids, such as ocean waves. Gravity waves can also occur within liquids, at the interface between two fluids with different densities. Elastic surface waves can travel along the surface of solids, such as Rayleigh or Love waves. Electromagnetic waves can also propagate as "surface waves" in that they can be guided along with a refractive index gradient or along an interface between two media having different dielectric constants.
Ligne de transmissionUne ligne de transmission est un ensemble de deux conducteurs acheminant de concert un signal électrique, d'une source (ou émetteur) vers une charge (ou récepteur). On doit considérer une paire de conducteurs comme une ligne de transmission chaque fois que sa longueur est du même ordre de grandeur, ou plus, que la longueur d'onde de la fréquence la plus élevée du signal à transmettre. La charge étant connectée à l'extrémité de la ligne, la ligne permet de retrouver, sur son entrée, à son autre extrémité, la même résistance que la charge, cela quelle que soit la longueur de la ligne.
Réflexion (physique)vignette|upright=1|La loi de la réflexion en physique.|alt=Le rayon incident arrive sur la surface et est réfléchi. Les angles d'incidence et de réflexion sont identiques. vignette|Matsimäe Pühajärv, Estonie. La réflexion en physique est le brusque changement de direction d'une onde à l'interface de deux milieux. Après réflexion, l'onde reste dans son milieu de propagation initial. De multiples types d'ondes peuvent subir une réflexion.
Dispersion (mécanique ondulatoire)vignette|Dispersion de la lumière blanche au passage d'un dioptre. En mécanique ondulatoire, la dispersion est le phénomène affectant une onde se propageant dans un milieu dit « dispersif », c'est-à-dire dans lequel les différentes longueurs d’onde constituant l'onde ne se propagent pas à la même vitesse. On rencontre ce phénomène pour tous types d'ondes, comme la lumière, le son et les ondes mécaniques (vagues, séismes, etc.). À l'exception du vide, tous les milieux sont dispersifs à des degrés divers.
Transverse modeA transverse mode of electromagnetic radiation is a particular electromagnetic field pattern of the radiation in the plane perpendicular (i.e., transverse) to the radiation's propagation direction. Transverse modes occur in radio waves and microwaves confined to a waveguide, and also in light waves in an optical fiber and in a laser's optical resonator. Transverse modes occur because of boundary conditions imposed on the wave by the waveguide.