Multi-junction solar cellMulti-junction (MJ) solar cells are solar cells with multiple p–n junctions made of different semiconductor materials. Each material's p-n junction will produce electric current in response to different wavelengths of light. The use of multiple semiconducting materials allows the absorbance of a broader range of wavelengths, improving the cell's sunlight to electrical energy conversion efficiency. Traditional single-junction cells have a maximum theoretical efficiency of 33.16%.
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.
Structure cristallineLa structure cristalline (ou structure d'un cristal) donne l'arrangement des atomes dans un cristal. Ces atomes se répètent périodiquement dans l'espace sous l'action des opérations de symétrie du groupe d'espace et forment ainsi la structure cristalline. Cette structure est un concept fondamental pour de nombreux domaines de la science et de la technologie. Elle est complètement décrite par les paramètres de maille du cristal, son réseau de Bravais, son groupe d'espace et la position des atomes dans l'unité asymétrique la maille.
Microscope à effet tunnelthumb|Atomes de silicium à la surface d'un cristal de carbure de silicium (SiC). Image obtenue à l'aide d'un STM. Le microscope à effet tunnel (en anglais, scanning tunneling microscope, STM) est inventé en 1981 par des chercheurs d'IBM, Gerd Binnig et Heinrich Rohrer, qui reçurent le prix Nobel de physique pour cette invention en 1986. C'est un microscope en champ proche qui utilise un phénomène quantique, l'effet tunnel, pour déterminer la morphologie et la densité d'états électroniques de surfaces conductrices ou semi-conductrices avec une résolution spatiale pouvant être égale ou inférieure à la taille des atomes.
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.
Schottky defectA Schottky defect is an excitation of the site occupations in a crystal lattice leading to point defects named after Walter H. Schottky. In ionic crystals, this defect forms when oppositely charged ions leave their lattice sites and become incorporated for instance at the surface, creating oppositely charged vacancies. These vacancies are formed in stoichiometric units, to maintain an overall neutral charge in the ionic solid. Schottky defects consist of unoccupied anion and cation sites in a stoichiometric ratio.
Low-voltage electron microscopeLow-voltage electron microscope (LVEM) is an electron microscope which operates at accelerating voltages of a few kiloelectronvolts or less. Traditional electron microscopes use accelerating voltages in the range of 10-1000 keV. Low voltage imaging in transmitted electrons is possible in many new scanning electron detector. Low cost alternative is dedicated table top low voltage transmission electron microscope.
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.
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.
Semi-conducteurUn semi-conducteur est un matériau qui a les caractéristiques électriques d'un isolant, mais pour lequel la probabilité qu'un électron puisse contribuer à un courant électrique, quoique faible, est suffisamment importante. En d'autres termes, la conductivité électrique d'un semi-conducteur est intermédiaire entre celle des métaux et celle des isolants. Le comportement électrique des semi-conducteurs est généralement modélisé, en physique de l'état solide, à l'aide de la théorie des bandes d'énergie.