钝化
发光二极管
材料科学
光电子学
X射线光电子能谱
微尺度化学
二极管
图层(电子)
纳米技术
化学工程
数学
工程类
数学教育
作者
Kyung Rock Son,Vignesh Murugadoss,Kyeong Heon Kim,Tae Geun Kim
标识
DOI:10.1016/j.apsusc.2022.152612
摘要
Microscale light-emitting diodes (µLEDs) have been extensively employed for solid-state lighting applications. However, the ratio of the sidewall area to the emitting area increases as the pixel size of µLEDs decreases, which increases the non-radiative recombination probability on the sidewall surface and eventually degrades the performance of µLEDs. In this study, we investigate the nature of chemical bonds at the sidewall/passivation layer interface using three passivation materials (SiO2, Al2O3, and Si3N4), to identify the underlying mechanism of passivation and thereby achieve high-performance InGaN-based µLEDs. According to the X-ray photoelectron spectroscopy results, the ratio of GaO bonds on the sidewall/passivation layer interface to GaN bonds varies with the passivation layer (1.1, 1.06, and 0.33 for SiO2, Al2O3, and Si3N4, respectively). This amount is a key factor affecting the passivation and directly influences the µLED performance. The µLED with SiO2 passivation exhibits a 39% higher light output power and 192% higher current density compared to those associated with the µLED with Si3N4 passivation. These results indicate that the suppression of non-radiative defects depends on the chemical states at the sidewall/passivation layer interface. The findings can provide guidance for optimizing the device performance of µLEDs by selecting appropriate passivation layers.
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