For the 1st time, it is now possible to produce Functional OLED Electrodes from Graphene.

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Orange luminous OLED on a graphene electrode. The two-euro coin serves as a comparison of sizes. Credit: © Fraunhofer FEP

Orange luminous OLED on a graphene electrode. The two-euro coin serves as a comparison of sizes. Credit: © Fraunhofer FEP

New OLEDs can, for example, be integrated into touch displays, and graphene promises many other applications for the future. The graphene electrodes have an area of 2 × 1 sq cm. “This was a real breakthrough in research and integration of extremely demanding materials,” says FEP’s project leader Dr. Beatrice Beyer. The process was developed and optimized in the EU-funded project “Gladiator” (Graphene Layers: Production, Characterization and Integration) together with partners from industry and research.

Graphene is light, transparent and extremely hard and has more tensile strength than steel. It is flexible, conductive for heat or electricity. It is only 0.3 nanometers. Graphene has a variety of applications – for example, as a touchscreen in smartphones.

The production of the OLED electrodes takes place in a vacuum. In a steel chamber, a wafer plate of high-purity copper is heated to about 800 degrees. The research team then supplies a mixture of methane and hydrogen and initiates a chemical reaction. The methane dissolves in the copper and forms carbon atoms, which spread on the surface. This process only takes a few minutes. After a cooling phase, a carrier polymer is placed on the graphene and the copper plate is etched away.

Gladiator project was launched in November 2013. The Fraunhofer team is working on the next steps until the conclusion in April 2017. During the remainder of the project, impurities and defects which occur during the transfer of the wafer-thin graphene to another carrier material are to be minimized.

“The first products could already be launched in two to three years,” says Beyer with confidence. Due to their flexibility, the graphene electrodes are ideal for touch screens. They do not break when the device drops to the ground. Instead of glass, one would use a transparent polymer film. Many other applications are also conceivable: in windows, the transparent graphene could regulate the light transmission or serve as an electrode in polarization filters. Graphene can also be used in photovoltaics, high-tech textiles and even in medicine.
https://www.fraunhofer.de/en/press/research-news/2017/january/milestone-in-graphene-production.html