Photovoltaic systemA photovoltaic system, also PV system or solar power system, is an electric power system designed to supply usable solar power by means of photovoltaics. It consists of an arrangement of several components, including solar panels to absorb and convert sunlight into electricity, a solar inverter to convert the output from direct to alternating current, as well as mounting, cabling, and other electrical accessories to set up a working system. It may also use a solar tracking system to improve the system's overall performance and include an integrated battery.
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.
Centrale solaire photovoltaïquethumb|Le Nellis Solar Power Plant comprend solaires PV sur (). Une centrale solaire photovoltaïque est un dispositif technique de production d'électricité renouvelable par des capteurs solaires photovoltaïques reliés entre eux (en série et en parallèle) et raccordé au réseau électrique par des onduleurs. Les centrales solaires sont de plus en plus puissantes (plus de en 2012), contrairement aux systèmes solaires photovoltaïques autonomes destinés à l'alimentation en électricité de bâtiments ou d'installations isolées (autoconsommation) dont la puissance dépasse rarement .
Potentiel d'oxydoréductionLe potentiel d'oxydoréduction, ou potentiel redox, est une grandeur empirique exprimée en volts et généralement notée (ou, pour le potentiel redox standard, E(M/M) où M désigne un métal quelconque). Ce potentiel est exprimé par rapport à une référence, souvent mesurée par une électrode normale à hydrogène (ENH, d'où l'unité V/ENH rencontrée dans certains ouvrages). Cette mesure est appliquée aux couples d'oxydoréduction pour prévoir la réactivité des espèces chimiques entre elles.
Cadmium telluride photovoltaicsCadmium telluride (CdTe) photovoltaics is a photovoltaic (PV) technology based on the use of cadmium telluride in a thin semiconductor layer designed to absorb and convert sunlight into electricity. Cadmium telluride PV is the only thin film technology with lower costs than conventional solar cells made of crystalline silicon in multi-kilowatt systems. On a lifecycle basis, CdTe PV has the smallest carbon footprint, lowest water use and shortest energy payback time of any current photovoltaic technology.
Standard electrode potentialIn electrochemistry, standard electrode potential , or , is a measure of the reducing power of any element or compound. The IUPAC "Gold Book" defines it as: "the value of the standard emf (electromotive force) of a cell in which molecular hydrogen under standard pressure is oxidized to solvated protons at the left-hand electrode". The basis for an electrochemical cell, such as the galvanic cell, is always a redox reaction which can be broken down into two half-reactions: oxidation at anode (loss of electron) and reduction at cathode (gain of electron).
Panneau solaireLe terme « panneau solaire » peut faire référence à plusieurs concepts liés à l'énergie solaire : capteur solaire photovoltaïque : aussi appelé panneau solaire photovoltaïque, convertit le rayonnement solaire en électricité par effet photovoltaïque ; capteur solaire thermique : aussi appelé panneaux solaire thermique, convertit le rayonnement solaire en chaleur et la transfère à un fluide caloporteur ; panneau photovoltaïque thermique : combinaison des deux précédents ; panneau solaire aérothermique : métho
Photovoltaic mounting systemPhotovoltaic mounting systems (also called solar module racking) are used to fix solar panels on surfaces like roofs, building facades, or the ground. These mounting systems generally enable retrofitting of solar panels on roofs or as part of the structure of the building (called BIPV). As the relative costs of solar photovoltaic (PV) modules has dropped, the costs of the racks have become more important and for small PV systems can be the most expensive material cost. Due to these trends, there has been an explosion of new racking trends.
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.
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.