Some screens make their own light. 
Some screens make their own light. 

Some screens can make their own light. These are called OLEDs. The name stands for organic light-emitting diode. 


An OLED is a special type of light. The name stands for organic light-emitting diode. 
How does an OLED make light? It works by using a thin layer of organic material. This layer sits between two metal parts called electrodes. One electrode is the anode and the other is the cathode.
People have been studying this for a long time. In the early 1950s, André Bernanose and his team saw organic materials glow. They used high voltages on materials like acridine orange dye. In 1960, Martin Pope at New York University studied how to make better contacts. His work helped create the way electricity enters modern OLEDs. Later, in 1965, researchers at Dow Chemical patented a way to use thin layers of phosphor. In 1974, Roger Partridge created a polymer version of this technology. 
Making these screens became much easier with new discoveries. In 1987, chemists Ching Wan Tang and Steven Van Slyke built the first practical OLED. They used two layers to help the light work better. This made the device use less power. In 1990, J. H. Burroughes reported a high-efficiency green light device. In 1995, J. Kido helped make white OLEDs for lighting. 
OLEDs are different from the regular LEDs used in many lights. Regular LEDs use a solid crystal structure. OLEDs use organic films instead. This difference allows OLEDs to be very thin and light. They can also be made into different shapes. Some screens use a system called AMOLED to control every tiny pixel. This uses a thin-film transistor to turn each pixel on or off. This makes the picture look very sharp and clear. 
An organic light-emitting diode, or OLED, is a specialized type of light-emitting diode (LED). Unlike standard LEDs, which use crystalline solid structures, OLEDs use an emissive layer made of organic compound films. 
The mechanism of an OLED relies on the movement of charges through organic semiconductors. These materials have conductivity levels ranging from insulators to conductors.
OLED technology can be organized into different families and control schemes. There are two main families: those based on small molecules and those using polymers.
The history of OLED is a long journey of scientific discovery. In the early 1950s, André Bernanose and his colleagues at Nancy-Université first observed electroluminescence in organic materials. They applied high alternating voltages to materials like acridine orange dye. In 1960, Martin Pope at New York University developed electrode contacts that are the basis for modern charge injection. By 1963, Pope's group observed direct current electroluminescence using a silver electrode at 400 volts. In 1965, Wolfgang Helfrich and W. G. Schneider produced the first double injection recombination electroluminescence. Later, in 1974, Roger Partridge created the first Polymer LED (PLED). His work used a film of polyvinylcarbazole up to 2.2 micrometers thick.
Practical, efficient OLEDs arrived through major breakthroughs in the late 20th century. In 1987, chemists Ching Wan Tang and Steven Van Slyke at Eastman Kodak built the first practical OLED device. They used a two-layer structure with separate hole and electron transporting layers. This design allowed recombination to happen in the middle of the organic layer, which improved efficiency and lowered operating voltage. In 1990, J. H. Burroughes reported a high-efficiency green light-emitting polymer device using 100nm thick films. By 1995, J. Kido and his team pioneered white OLEDs, which led to commercialized OLED-backlit displays and lighting. 
Commercialization progressed rapidly through the late 1990s and early 2000s. In 1999, Kodak and Sanyo announced the world's first 2.4-inch active-matrix, full-color OLED display. By 2002, they presented a 15-inch HDTV prototype based on white OLEDs. Manufacturing of small molecule OLEDs began in 1997 with Pioneer Corporation, followed by TDK in 2001. Samsung Display became one of the largest manufacturers after its predecessor, Samsung-NEC, grew in 2002. 
OLED technology connects to many different fields of science and engineering. In materials science, researchers study how to use doping to increase radiative efficiency or change the wavelength of light emission. They also work on graded heterojunction architectures to improve quantum efficiency. For example, a 2011 development improved quantum efficiency up to 19% by varying material composition within the emissive layer. This technology also links to the field of plastic electronics. Because OLEDs can be made flexible, they are vital for the development of foldable smartphones. 
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