Unconventional superconductorUnconventional superconductors are materials that display superconductivity which does not conform to conventional BCS theory or its extensions. The superconducting properties of CeCu2Si2, a type of heavy fermion material, were reported in 1979 by Frank Steglich. For a long time it was believed that CeCu2Si2 was a singlet d-wave superconductor, but since the mid 2010s, this notion has been strongly contested. In the early eighties, many more unconventional, heavy fermion superconductors were discovered, including UBe13, UPt3 and URu2Si2.
Supraconducteur à haute températureUn supraconducteur à haute température (en anglais, high-temperature superconductor : high- ou HTSC) est un matériau présentant une température critique de supraconductivité relativement élevée par rapport aux supraconducteurs conventionnels, c'est-à-dire en général à des températures supérieures à soit . Ce terme désigne en général la famille des matériaux de type cuprate, dont la supraconductivité existe jusqu'à . Mais d'autres familles de supraconducteurs, comme les supraconducteurs à base de fer découverts en 2008, peuvent aussi être désignées par ce même terme.
Band diagramIn solid-state physics of semiconductors, a band diagram is a diagram plotting various key electron energy levels (Fermi level and nearby energy band edges) as a function of some spatial dimension, which is often denoted x. These diagrams help to explain the operation of many kinds of semiconductor devices and to visualize how bands change with position (band bending). The bands may be coloured to distinguish level filling. A band diagram should not be confused with a band structure plot.
Quantum networkQuantum networks form an important element of quantum computing and quantum communication systems. Quantum networks facilitate the transmission of information in the form of quantum bits, also called qubits, between physically separated quantum processors. A quantum processor is a small quantum computer being able to perform quantum logic gates on a certain number of qubits. Quantum networks work in a similar way to classical networks. The main difference is that quantum networking, like quantum computing, is better at solving certain problems, such as modeling quantum systems.
No-deleting theoremIn physics, the no-deleting theorem of quantum information theory is a no-go theorem which states that, in general, given two copies of some arbitrary quantum state, it is impossible to delete one of the copies. It is a time-reversed to the no-cloning theorem, which states that arbitrary states cannot be copied. This theorem seems remarkable, because, in many senses, quantum states are fragile; the theorem asserts that, in a particular case, they are also robust. Physicist Arun K. Pati along with Samuel L.
Composant semi-conducteurvignette|Aperçu de quelques dispositifs semi-conducteurs encapsulés Un composant semi-conducteur est un composant électronique dont le fonctionnement repose sur les propriétés électroniques d'un matériau semi-conducteur (principalement le silicium, le germanium et l'arséniure de gallium, ainsi que des semi-conducteurs organiques). Sa conductivité se situe entre les conducteurs et les isolants. Les composants semi-conducteurs ont remplacé les tubes à vide dans la plupart des applications.
Valence and conduction bandsIn solid-state physics, the valence band and conduction band are the bands closest to the Fermi level, and thus determine the electrical conductivity of the solid. In nonmetals, the valence band is the highest range of electron energies in which electrons are normally present at absolute zero temperature, while the conduction band is the lowest range of vacant electronic states. On a graph of the electronic band structure of a semiconducting material, the valence band is located below the Fermi level, while the conduction band is located above it.
Band bendingIn solid-state physics, band bending refers to the process in which the electronic band structure in a material curves up or down near a junction or interface. It does not involve any physical (spatial) bending. When the electrochemical potential of the free charge carriers around an interface of a semiconductor is dissimilar, charge carriers are transferred between the two materials until an equilibrium state is reached whereby the potential difference vanishes.
Linear optical quantum computingLinear optical quantum computing or linear optics quantum computation (LOQC) is a paradigm of quantum computation, allowing (under certain conditions, described below) universal quantum computation. LOQC uses photons as information carriers, mainly uses linear optical elements, or optical instruments (including reciprocal mirrors and waveplates) to process quantum information, and uses photon detectors and quantum memories to detect and store quantum information.
MODFETLe MODFET (modulated-doping field effect transistor) ou transistor à effet de champ à dopage modulé est un type de transistor à effet de champ (FET). Il est connu aussi sous le nom de HEMT (High Electron Mobility Transistor), ou transistor à électron à haute mobilité. Comme les autres FET, les MODFET sont utilisés dans les circuits intégrés comme interrupteur numérique. vignette|Structure de bande d'un transistor HEMT n-AlGaAs/GaAs montrant la présence d'une zone de gaz d'électrons 2D.
Magnetic semiconductorMagnetic semiconductors are semiconductor materials that exhibit both ferromagnetism (or a similar response) and useful semiconductor properties. If implemented in devices, these materials could provide a new type of control of conduction. Whereas traditional electronics are based on control of charge carriers (n- or p-type), practical magnetic semiconductors would also allow control of quantum spin state (up or down).
Bande interditeredresse=.9|vignette|Bandes d'un semiconducteur. La bande interdite d'un matériau, ou gap, est l'intervalle, situé entre la bande de valence et la bande de conduction, dans lequel la densité d'états électroniques est nulle, de sorte qu'on n'y trouve pas de niveau d'énergie électronique. La largeur de bande interdite, ou band gap en anglais, est une caractéristique fondamentale des matériaux semiconducteurs ; souvent notée , elle est généralement exprimée en électronvolts (eV). Fichier:Band filling diagram.