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Dislocation Suppresses Sidewall-Surface Recombination of Micro-LEDs

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Abstract
Nonradiative recombination rate that consists of dislocation-related nonradiative recombination rate (A(0)) and surface recombination rate (A(s)) is one of the major parameters determining the performance of microlight-emitting diodes (mu LEDs). Recent demonstrations improving the efficiency of blue InGaN or red AlGaInP mu LEDs using specific methods such as atomic layer deposition or chemical treatment confirm the suppression of A(s). However, it is hardly found that those methods effectively improve the efficiency of red InGaN mu LEDs so far. Here, it is discovered that the dislocation leads to an ineffective A(s). First, an intrinsic A(s) degrades the external quantum efficiency (EQE) of blue InGaN mu LEDs, resulting in EQE decreases with shrinking size. Second, panchromatic cathodoluminescence finds evidence that most of the carriers can be trapped before reaching the sidewall due to high A(0). This results in shortened diffusion length of carriers and reduces the number of carriers reaching the sidewall. Consequently, the opposite trend of increasing EQE with shrinking size occurs in the case of red InGaN mu LEDs due to an ineffective A(s). Furthermore, an 8.3 nm quantum well of InGaN with 13% Indium content that can reach a approximate to 690 nm wavelength at the low current is shown.
Author(s)
Park, Jeong-HwanPristovsek, MarkusCai, WentaoCheong, HeajeongKang, Chang-MoLee, Dong-SeonSeong, Tae-YeonAmano, Hiroshi
Issued Date
2023-10
Type
Article
DOI
10.1002/lpor.202300199
URI
https://scholar.gist.ac.kr/handle/local/9987
Publisher
WILEY-V C H VERLAG GMBH
Citation
LASER & PHOTONICS REVIEWS, v.17, no.10
ISSN
1863-8880
Appears in Collections:
Department of Semiconductor Engineering > 1. Journal Articles
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