Photovoltaic system performancePhotovoltaic system performance is a function of the climatic conditions, the equipment used and the system configuration. PV performance can be measured as the ratio of actual solar PV system output vs expected values, the measurement being essential for proper solar PV facility's operation and maintenance. The primary energy input is the global light irradiance in the plane of the solar arrays, and this in turn is a combination of the direct and the diffuse radiation.
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.
Panneau photovoltaïque à concentrationUn panneau photovoltaïque à concentration, parfois simplement dénommé « panneau à concentration » est un module solaire photovoltaïque composé d'une série de dispositifs optiques de concentration de la lumière (lentilles ou miroirs) sur des cellules photovoltaïques (qui doivent être refroidies si le taux de concentration est élevé). Le composant le plus cher d'un module est - de loin - la cellule photovoltaïque.
Third-generation photovoltaic cellThird-generation photovoltaic cells are solar cells that are potentially able to overcome the Shockley–Queisser limit of 31–41% power efficiency for single bandgap solar cells. This includes a range of alternatives to cells made of semiconducting p-n junctions ("first generation") and thin film cells ("second generation"). Common third-generation systems include multi-layer ("tandem") cells made of amorphous silicon or gallium arsenide, while more theoretical developments include frequency conversion, (i.e.
Electron mobilityIn solid-state physics, the electron mobility characterises how quickly an electron can move through a metal or semiconductor when pulled by an electric field. There is an analogous quantity for holes, called hole mobility. The term carrier mobility refers in general to both electron and hole mobility. Electron and hole mobility are special cases of electrical mobility of charged particles in a fluid under an applied electric field. When an electric field E is applied across a piece of material, the electrons respond by moving with an average velocity called the drift velocity, .
Solar cell researchThere are currently many research groups active in the field of photovoltaics in universities and research institutions around the world. This research can be categorized into three areas: making current technology solar cells cheaper and/or more efficient to effectively compete with other energy sources; developing new technologies based on new solar cell architectural designs; and developing new materials to serve as more efficient energy converters from light energy into electric current or light absorbers and charge carriers.
Installation photovoltaïque intégrée au bâtithumb|Habitations avec des panneaux solaires intégrés au bâti à Fribourg-en-Brisgau. Les installations photovoltaïques intégrées au bâti sont des installations photovoltaïques se substituant aux éléments de construction traditionnels des maisons et immeubles. La filière est souvent désignée par son acronyme anglais BIPV (). L’intégration du photovoltaïque au bâti apparait dans les années 1980 aux États-Unis, ces systèmes installés sur des bâtiments connectés au réseau ne sont pas montés en surimposition mais intégrés esthétiquement car le photovoltaïque arrive en ville et ne se limite plus au site isolé.
Timeline of solar cellsIn the 19th century, it was observed that the sunlight striking certain materials generates detectable electric current – the photoelectric effect. This discovery laid the foundation for solar cells. Solar cells have gone on to be used in many applications. They have historically been used in situations where electrical power from the grid was unavailable. As the invention was brought out it made solar cells as a prominent utilization for power generation for satellites.
Quantum dot solar cellA quantum dot solar cell (QDSC) is a solar cell design that uses quantum dots as the captivating photovoltaic material. It attempts to replace bulk materials such as silicon, copper indium gallium selenide (CIGS) or cadmium telluride (CdTe). Quantum dots have bandgaps that are adjustable across a wide range of energy levels by changing their size. In bulk materials, the bandgap is fixed by the choice of material(s).
Transistor à effet de champUn transistor à effet de champ (en anglais, Field-effect transistor ou FET) est un dispositif semi-conducteur de la famille des transistors. Sa particularité est d'utiliser un champ électrique pour contrôler la forme et donc la conductivité d'un « canal » dans un matériau semiconducteur. Il concurrence le transistor bipolaire dans de nombreux domaines d'applications, tels que l'électronique numérique. Le premier brevet sur le transistor à effet de champ a été déposé en 1925 par Julius E. Lilienfeld.