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May 22, 2026Advanced Functional Materials11 citations

High‐Power III‐Nitride Deep‐Ultraviolet Light Emitters With Record 21% Wall‐Plug Efficiency

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YWYufan WeiZGZhiwei GaoZLZhengang Liang

Key Points

  • This research aims to develop high-power deep-ultraviolet light emitters with improved wall-plug efficiency.
  • Developed a DUV light emitter with a cooperative photon-redirection strategy.
  • Integrated an in situ nano-porous AlN scattering layer and optimized reflective mesa.
  • Conducted experiments under varying current conditions (10 to 350 mA) to measure efficiency.
  • Achieved a record wall-plug efficiency of 21.2% at 70 mA injected current.
  • Maintained over 16% efficiency across a wide current range.
  • DUV light emitter array successfully inactivated >99.999% of bacteria at 1.33 W/cm² irradiance.

Abstract

ABSTRACT The complete replacement of toxic mercury lamps requires III‐nitride deep‐ultraviolet (DUV) light emitters with high wall‐plug efficiency (WPE at least 20%) under high‐current operation, but their WPE is seriously limited by difficult forward light emission and low light extraction. Herein, a high‐power DUV light emitter with a record 21.2% WPE is proposed by a cooperative photon‐redirection strategy. The DUV chip architecture synergistically integrates an in situ nano‐porous AlN scattering layer with an optimized reflective mesa and a double‐sided patterned sapphire substrate. This strategy efficiently redirects laterally propagating photons into the escape cone through coupled reflection and multi‐stage scattering, thereby increasing the TM‐mode light extraction efficiency by 252.1%. Consequently, the fabricated DUV light emitter achieves a record‐high WPE of 21.2% at an injected current of 70 mA, maintaining a WPE exceeding 16% over a wide current range from 10 to 350 mA. Furthermore, a DUV light emitter array module with a high irradiance of 1.33 W/cm 2 is integrated in a large‐flow water‐treatment system, making >99.999% inactivation of bacteria under an ultra‐high water flow rate of 20 m 3 /h. This work will definitely accelerate the large‐scale commercialization of the new‐generation solid‐state DUV source.

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Cite This Study

Wei et al. (2026) studied this question.

synapsesocial.com/papers/6a0ff39dd674f7c03778c5c3https://doi.org/10.1002/adfm.75969
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