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通过双侧反射器实现高效超薄侧面发光氮化铟镓/氮化镓倒装芯片发光二极管的演示。

Demonstration of Efficient Ultrathin Side-Emitting InGaN/GaN Flip-Chip Light-Emitting Diodes by Double Side Reflectors.

作者信息

Kim Tae Kyoung, Islam Abu Bashar Mohammad Hamidul, Cha Yu-Jung, Oh Seung Hyun, Kwak Joon Seop

机构信息

Department of Energy Engineering, Korea Institute of Energy Technology, Naju-si 58330, Jeollanam-do, Korea.

Lumens Co., Ltd., Yongin 446901, Gyeonggi-do, Korea.

出版信息

Nanomaterials (Basel). 2022 Apr 13;12(8):1342. doi: 10.3390/nano12081342.

Abstract

This work proposes an InGaN/GaN multiple-quantum-well flip-chip blue ultrathin side-emitting (USE) light-emitting diode (LED) and describes the sidewall light emission characteristics for the application of backlight units in display technology. The USE-LEDs are fabricated with top (ITO/distributed Bragg reflector) and bottom (Ag) mirrors that cause light emission from the four sidewalls in a lateral direction. The effect of light output power (LOP) on lateral direction is consistently investigated for improving the optoelectronic performances of USE-LEDs. Initially, the reference USE-LED suffers from very low LOP because of poor light extraction efficiency (LEE). Therefore, the LEE is improved by fabricating ZnO nanorods at each sidewall through hydrothermal method. The effects of ZnO nanorod lengths and diameters on LOP are systematically investigated for optimizing the dimensions of ZnO nanorods. The optimized ZnO nanorods improve the LEE of USE-LED, which thus results in increasing the LOP > 80% compared to the reference LED. In addition, the light-tools simulator is also used for elucidating the increase in LEE of ZnO nanorods USE-LED.

摘要

这项工作提出了一种氮化铟镓/氮化镓多量子阱倒装芯片蓝色超薄边发射(USE)发光二极管(LED),并描述了其在显示技术中用于背光单元时的侧壁发光特性。这些USE-LED是通过顶部(ITO/分布式布拉格反射器)和底部(银)反射镜制造的,可使光从四个侧壁横向发射。为了提高USE-LED的光电性能,持续研究了光输出功率(LOP)在横向方向上的影响。最初,参考USE-LED由于光提取效率(LEE)不佳,LOP非常低。因此,通过水热法在每个侧壁上制备氧化锌纳米棒来提高LEE。系统研究了氧化锌纳米棒的长度和直径对LOP的影响,以优化氧化锌纳米棒的尺寸。优化后的氧化锌纳米棒提高了USE-LED的LEE,与参考LED相比,从而使LOP增加了80%以上。此外,还使用光工具模拟器来阐明氧化锌纳米棒USE-LED的LEE增加情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbc7/9028715/ca247346e1df/nanomaterials-12-01342-g001.jpg

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