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基于超晶格隧道结的紫外AlGaN/GaN发光二极管的性能研究

Performance Study of Ultraviolet AlGaN/GaN Light-Emitting Diodes Based on Superlattice Tunneling Junction.

作者信息

Zhao Zhuang, Liu Yang, Li Peixian, Zhou Xiaowei, Yang Bo, Xiang Yingru, Bai Junchun

机构信息

School of Advanced Materials and Nanotechnology, Xidian University, Xi'an 710071, China.

State Key Discipline Laboratory of Wide Band Gap Semiconductor Technology, Xidian University, Xi'an 710071, China.

出版信息

Micromachines (Basel). 2024 Dec 28;16(1):28. doi: 10.3390/mi16010028.

Abstract

In this study, we aim to enhance the internal quantum efficiency (IQE) of AlGaN-based ultraviolet (UV) light-emitting diodes (LEDs) by using the short-period AlGaN/GaN superlattice as a tunnel junction (TJ) to construct polarized structures. We analyze in detail the effect of this polarized TJ on the carrier injection efficiency and investigate the increase in hole and electron density caused by the formation of 2D hole gas (2DHG) and 2D electron gas (2DEG) in the superlattice structure. In addition, a dielectric layer is introduced to evaluate the effect of stress changes on the tunneling probability and current spread in TJ. At a current of 140 mA, this method demonstrates effective current expansion. Our results not only improve the performance of UV LEDs but also provide an important theoretical and experimental basis for future research on UV LEDs based on superlattice TJ. In addition, our study also highlights the key role of group III nitride materials in achieving efficient UV luminescence, and the polarization characteristics and band structure of these materials are critical for optimizing carrier injection and recombination processes.

摘要

在本研究中,我们旨在通过使用短周期AlGaN/GaN超晶格作为隧道结(TJ)来构建极化结构,以提高基于AlGaN的紫外(UV)发光二极管(LED)的内量子效率(IQE)。我们详细分析了这种极化TJ对载流子注入效率的影响,并研究了超晶格结构中二维空穴气(2DHG)和二维电子气(2DEG)的形成所导致的空穴和电子密度的增加。此外,引入了一个介电层来评估应力变化对TJ中的隧穿概率和电流扩展的影响。在140 mA的电流下,该方法展示了有效的电流扩展。我们的结果不仅提高了UV LED的性能,还为未来基于超晶格TJ的UV LED研究提供了重要的理论和实验基础。此外,我们的研究还突出了III族氮化物材料在实现高效紫外发光中的关键作用,并且这些材料的极化特性和能带结构对于优化载流子注入和复合过程至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e7ea/11767527/c8f52f13e456/micromachines-16-00028-g001.jpg

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