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用于减轻侧壁效应的氮化铟镓微发光二极管制造中的先进技术。

Advanced technologies in InGaN micro-LED fabrication to mitigate the sidewall effect.

作者信息

Liu Zhiyuan, Cao Haicheng, Tang Xiao, Liu Tingang, Lu Yi, Jiang Zixian, Xiao Na, Li Xiaohang

机构信息

Advanced Semiconductor Laboratory, Electrical and Computer Engineering Program, CEMSE Division, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Kingdom of Saudi Arabia.

出版信息

Light Sci Appl. 2025 Jan 26;14(1):64. doi: 10.1038/s41377-025-01751-y.

Abstract

The size of InGaN micro-LEDs is continuously decreasing to meet the demands of various emerging applications, especially in tiny micro-displays such as AR/VR. However, the conventional pixel definition based on plasma etching significantly damages the mesa sidewalls, leading to a severe reduction in efficiency as the micro-LED size decreases. This seriously impedes the development and application of micro-LEDs. In this work, we comprehensively explain the origin of micro-LED sidewall effects and corresponding physical models. Subsequently, we systematically review recent progress in micro-LED fabrication aiming at suppressing sidewall effects. Furthermore, we discuss advancements in micro-LED fabrication with "damage-free" techniques, which hold the potential to fundamentally address the issue of plasma damage in the micro-LED process. We believe this review will deepen the understanding of micro-LED sidewall effects and provide a better insight into the latest associated fabrication technologies for high-efficient InGaN micro-LEDs.

摘要

氮化铟镓微发光二极管(InGaN micro-LEDs)的尺寸不断减小,以满足各种新兴应用的需求,特别是在诸如增强现实/虚拟现实(AR/VR)等微型微显示器中。然而,基于等离子体蚀刻的传统像素定义会严重损坏台面侧壁,随着微发光二极管尺寸减小,导致效率大幅降低。这严重阻碍了微发光二极管的发展和应用。在这项工作中,我们全面解释了微发光二极管侧壁效应的起源及相应的物理模型。随后,我们系统回顾了旨在抑制侧壁效应的微发光二极管制造方面的最新进展。此外,我们讨论了采用“无损伤”技术在微发光二极管制造方面的进展,这些技术有潜力从根本上解决微发光二极管制造过程中的等离子体损伤问题。我们相信,这篇综述将加深对微发光二极管侧壁效应的理解,并为高效氮化铟镓微发光二极管的最新相关制造技术提供更好的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ef5e/11762326/b3c9929e3fd9/41377_2025_1751_Fig1_HTML.jpg

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