Transformation opticsTransformation optics is a branch of optics which applies metamaterials to produce spatial variations, derived from coordinate transformations, which can direct chosen bandwidths of electromagnetic radiation. This can allow for the construction of new composite artificial devices, which probably could not exist without metamaterials and coordinate transformation. Computing power that became available in the late 1990s enables prescribed quantitative values for the permittivity and permeability, the constitutive parameters, which produce localized spatial variations.
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.
Transparence (physique)La transparence désigne la capacité d'un matériau à ne pas interagir avec une onde. Dans le cas de l'optique, un matériau transparent a pour propriété de ne pas absorber la lumière. Cette propriété du matériau dépend cependant de la longueur d'onde. Translucidité L'appellation translucide est spécifiquement employée pour les ondes lumineuses du domaine visible. Les matériaux translucides ont la propriété de diffuser la lumière lors de sa transmission, ce qui rend l'observation au travers difficile ou impossible.
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.
Plasmonic metamaterialA plasmonic metamaterial is a metamaterial that uses surface plasmons to achieve optical properties not seen in nature. Plasmons are produced from the interaction of light with metal-dielectric materials. Under specific conditions, the incident light couples with the surface plasmons to create self-sustaining, propagating electromagnetic waves known as surface plasmon polaritons (SPPs). Once launched, the SPPs ripple along the metal-dielectric interface. Compared with the incident light, the SPPs can be much shorter in wavelength.
Réseau de diffractionUn réseau de diffraction est un dispositif optique composé d'une série de fentes parallèles (réseau en transmission), ou de rayures réfléchissantes (réseau en réflexion). Ces traits sont espacés de manière régulière, et l'espacement est appelé le « pas » du réseau. Si la distance entre plusieurs traits est de l'ordre de grandeur de la longueur de cohérence spatiale de la lumière incidente, le réseau permet d'obtenir des figures de diffraction particulières influencées par la répétition.
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.
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.
Effet FaradayEn physique, l'effet Faraday décrit l'interaction entre la lumière et un champ magnétique dans un matériau : la polarisation de la lumière effectue une rotation proportionnelle à la composante du champ magnétique sur la direction de propagation de la lumière. L'effet Faraday est un effet magnéto-optique découvert par Michael Faraday en 1845. Il apparaît dans la plupart des matériaux diélectriques transparents lorsqu'ils sont soumis à des champs magnétiques.
Metamaterials (journal)Metamaterials was a peer-reviewed scientific journal that was established in March 2007. It was published by Elsevier in association with the Metamorphose Network of Excellence. The coordinating editor was Mikhail Lapine. The journal was published quarterly, with occasional special issues. It covered research concerning metamaterials, such as artificial electromagnetic materials, which includes various types of composite periodic structures and frequency selective surfaces in the microwave and optical range.