Coherent vertical beaming using Bragg mirrors for high-efficiency GaN light-emitting diodes
- Authors
- Kim, Sun-Kyung; Park, Hong-Gyu
- Issue Date
- 17-6월-2013
- Publisher
- OPTICAL SOC AMER
- Citation
- OPTICS EXPRESS, v.21, no.12, pp.14566 - 14572
- Indexed
- SCIE
SCOPUS
- Journal Title
- OPTICS EXPRESS
- Volume
- 21
- Number
- 12
- Start Page
- 14566
- End Page
- 14572
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/102958
- DOI
- 10.1364/OE.21.014566
- ISSN
- 1094-4087
- Abstract
- We propose a dielectric Bragg mirror that utilizes coherent coupling with multiple quantum wells (MQWs) to significantly enhance light extraction from GaN light-emitting diode (LED). Full vectorial electromagnetic simulation showed that, under constructive interference conditions, the Bragg mirror consisting of two dielectric (SiO2/TiO2) stacks and a silver layer led to >30% enhancement in light extraction, as compared to a single silver mirror. Such significant enhancement by a pre-designed Bragg/metal mirror was ascribed to the vertically oriented radiation pattern and reduced plasmonic metal loss. In addition, the gap distance between the MQWs and a Bragg mirror at which the constructive interference takes place could be controlled by modulating the thickness of the first low-refractive-index layer. Moreover, a two-dimensional periodic pattern was incorporated into an upper GaN layer with the designed Bragg mirror and it was shown that a lattice constant of similar to 800 nm was optimal for light extraction. We believe that tailoring the radiation profile of light emitters by coherent coupling with designed high-reflectivity mirrors will be a promising route to overcome the efficiency limit of current semiconductor LED devices. (C)2013 Optical Society of America
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