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.
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.
Contact ohmiquevignette|481x481px|Schéma de bandes du métal et du semi-conducteur en interaction où Φm
Metal–semiconductor junctionIn solid-state physics, a metal–semiconductor (M–S) junction is a type of electrical junction in which a metal comes in close contact with a semiconductor material. It is the oldest practical semiconductor device. M–S junctions can either be rectifying or non-rectifying. The rectifying metal–semiconductor junction forms a Schottky barrier, making a device known as a Schottky diode, while the non-rectifying junction is called an ohmic contact.
Théorie des bandesredresse=1.5|vignette|Représentation schématique des bandes d'énergie d'un solide. représente le niveau de Fermi. thumb|upright=1.5|Animation sur le point de vue quantique sur les métaux et isolants liée à la théorie des bandes En physique de l'état solide, la théorie des bandes est une modélisation des valeurs d'énergie que peuvent prendre les électrons d'un solide à l'intérieur de celui-ci. De façon générale, ces électrons n'ont la possibilité de prendre que des valeurs d'énergie comprises dans certains intervalles, lesquels sont séparés par des bandes d'énergie interdites (ou bandes interdites).
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.
Crystalline siliconCrystalline silicon or (c-Si) Is the crystalline forms of silicon, either polycrystalline silicon (poly-Si, consisting of small crystals), or monocrystalline silicon (mono-Si, a continuous crystal). Crystalline silicon is the dominant semiconducting material used in photovoltaic technology for the production of solar cells. These cells are assembled into solar panels as part of a photovoltaic system to generate solar power from sunlight. In electronics, crystalline silicon is typically the monocrystalline form of silicon, and is used for producing microchips.
Dopage (semi-conducteur)Dans le domaine des semi-conducteurs, le dopage est l'action d'ajouter des impuretés en petites quantités à une substance pure afin de modifier ses propriétés de conductivité. Les propriétés des semi-conducteurs sont en grande partie régies par la quantité de porteurs de charge qu'ils contiennent. Ces porteurs sont les électrons ou les trous. Le dopage d'un matériau consiste à introduire, dans sa matrice, des atomes d'un autre matériau. Ces atomes vont se substituer à certains atomes initiaux et ainsi introduire davantage d'électrons ou de trous.
Anderson's ruleAnderson's rule is used for the construction of energy band diagrams of the heterojunction between two semiconductor materials. Anderson's rule states that when constructing an energy band diagram, the vacuum levels of the two semiconductors on either side of the heterojunction should be aligned (at the same energy). It is also referred to as the electron affinity rule, and is closely related to the Schottky–Mott rule for metal–semiconductor junctions. Anderson's rule was first described by R. L. Anderson in 1960.