GaN tagged posts

New transistor brings high voltage to microchip scale

New transistor brings high voltage to microchip scale
The POWERlab’s intrinsic polarization superjunction (iPSJ). Credit: 2026 Alain Herzog/EPFL CC BY SA 4.0

Inside every electronic device, the flow of electricity is controlled by a switch called a transistor. For decades, these switches were made from silicon. More recently, engineers have turned to a material called gallium nitride (GaN), which enables small, efficient devices like smartphone chargers.

However, at very high voltages, electric fields inside these transistors can concentrate at specific points, causing them to fail prematurely. As a result, today’s GaN devices still struggle to perform at the highest voltage levels achieved by silicon.

To overcome this limitation, researchers in the Power and Wide-band-gap Electronics Research Lab (POWERlab) in EPFL’s School of Engi...

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Group blazes path to efficient, Eco-friendly Deep-Ultraviolet LED

Members of the Jena-Xing Research Group - Debdeep Jena, Moudud Islam, Huili (Grace) Xing, Vladimir Protasenko, Kevin Lee and Shyam Bharadwaj - are pictured in front of one of the molecular beam epitaxy systems used in their latest work. Credit: Image courtesy of Cornell University

Members of the Jena-Xing Research Group – Debdeep Jena, Moudud Islam, Huili (Grace) Xing, Vladimir Protasenko, Kevin Lee and Shyam Bharadwaj – are pictured in front of one of the molecular beam epitaxy systems used in their latest work. Credit: Image courtesy of Cornell University

The darkest form of UV light, ie UV-C, is unique because of its reputation as a killer – of harmful organisms. With wavelengths of between 200 and 280 nanometers, this particular form of UV light penetrates the membranes of viruses, bacteria, mold and dust mites, attacking their DNA and killing them...

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