Engineering 2D Material Exciton Line Shape with Graphene/h-BN Encapsulation
Mapping the Antiparallel Aligned Stripe Domain Rotation by Microwave Exci...
Design and Simulation of Silicon-Based Tunable External Cavity Diode Lase...
 US2Mask: Image-to-mask generation learning via a conditional GAN for ca...
High-Performance All-Dielectric Metasurface for Quadruple Fano Resonance-...
Polarization Characteristics of Vertical Cavity Surface Emitting Laser wi...
Comparative Transcriptome Analysis Reveals the Light Spectra Affect the G...
Freezing and thawing of cells on a microfluidic device: a simple and time...
Ultra-stable and low-divergence high-power antimonide light emitters with...
Demonstration of a 700 W x 2 ports single-stage all-fiber nanosecond ampl...
官方微信
友情链接

Monolithic integration of deep ultraviolet and visible light-emitting diodes for radiative sterilization application    (Open Access)

2024-04-01


Lu, Yi; Guo, Yanan; Liu, Zhiyuan; Yan, Jianchang; Wang, Junxi; Li, Jinmin; Li, Xiaohang Source: Applied Physics Letters, v 124, n 11, March 11, 2024;

Abstract:

The demand for effective sterilization methods, particularly in the wake of the Covid-19 pandemic, has sparked interest in the use of deep ultraviolet (DUV) radiation for disinfection. The high risk of skin/eye exposure to the high-energy DUV radiation requires the integration of DUV and visible (VIS) LED chips to sterilize and indicate its operation simultaneously in the portable sterilization devices. However, conventional double-chip integration suffers from high power consumption and fabrication complexity. This study sets out to explore the monolithic integration of DUV and VIS LEDs for the radiative sterilization application. This is accomplished by cascading AlGaN/AlGaN/AlGaN multiple quantum wells (QWs) and GaN/InGaN/GaN QWs through the compositional grading AlGaN cascade region. The inevitable overflown electrons from DUV QWs are deliberately introduced into the VIS QWs, allowing for the electron-hole recombination and the simultaneous emission of VIS light. Both experiment and simulation results confirm the feasibility of the proposed dual-wavelength LED integration. The proposed DUV&VIS LED shows an external quantum efficiency and wall-plug efficiency of 2.03% and 1.54% at 40 mA, respectively. This study establishes a quantitative framework for the monolithic integration of DUV and VIS LEDs for radiative sterilization, which has the potential to replace the current technique of using discrete DUV and VIS double-chip configurations.

© 2024 Author(s). (41 refs.)




关于我们
下载视频观看
联系方式
通信地址

北京市海淀区清华东路甲35号(林大北路中段) 北京912信箱 (100083)

电话

010-82304210/010-82305052(传真)

E-mail

semi@semi.ac.cn

交通地图
版权所有 中国科学院半导体研究所

备案号:京ICP备05085259-1号 京公网安备110402500052 中国科学院半导体所声明