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Updated: Feb 10, 2026

Production and Characterization of Vacuum Deposited Organic Light Emitting Diodes
Published on: November 16, 2018
Extreme-Temperature (1000 °C) Operation of InGaN/AlGaN Nanowire Light-Emitting Diodes
Mano Bala Sankar Muthu1, Injamamul Hoque Emu1, Ravi Teja Velpula1
1Department of Electrical and Computer Engineering, Texas Tech University, 910 Boston Avenue, Lubbock, Texas 79409, United States.
Abstract:
We present the development of InGaN/AlGaN nanowire light-emitting diodes (LEDs) as superior candidates for extreme thermal environments, demonstrating exceptional performance even at 1000 °C. Through a combination of advanced simulations and experimental validation, our study reveals that nanowire LEDs effectively mitigate thermal stress and enhance heat dissipation compared with traditional thin-film LEDs. This is attributed to their high surface-to-volume ratio and reduced defect density. Remarkably, these nanowire LEDs exhibit virtually zero efficiency droop up to 500 °C and minimal droop between 600 °C and 1000 °C, while maintaining stable peak wavelength emission (∼525 nm), outperforming thin-film counterparts. The improved thermal management is due to efficient phonon transport and strain relaxation inherent to nanowire structures. These findings highlight InGaN/AlGaN nanowire LEDs as a transformative solution for high-temperature applications such as space exploration, industrial processes, and advanced sensing, offering unparalleled reliability in harsh conditions.
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