DocumentCode
1545698
Title
Effects of Nanometer-Scale Photonic Crystal Structures on the Light Extraction From GaN Light-Emitting Diodes
Author
Shin, Young Chul ; Kim, Dong Ho ; Chae, Dong Ju ; Yang, Ji Won ; Shim, Jae In ; Park, Joong Mok ; Ho, Kai-Ming ; Constant, Kristen ; Ryu, Han Youl ; Kim, Tae Geun
Author_Institution
Sch. of Electr. Eng., Korea Univ., Seoul, South Korea
Volume
46
Issue
9
fYear
2010
Firstpage
1375
Lastpage
1380
Abstract
This paper reports on the effect of nanometer-scale photonic crystal structures on the enhancement of the light extraction in GaN light-emitting diodes. Photonic crystals with hole or pillar-patterned structures with lattice constants of 460, 600, 750, and 920 nm are fabricated on indium-doped tin oxide (ITO) electrodes and/or p-GaN layers using laser holography and reactive ion etching. It is found that the light extraction efficiency depends strongly on the distance between the photonic crystal and the active layer, as well as the lattice constant for both structures. Photonic crystal light-emitting diodes (LEDs) with a lattice constant of 750 nm and hole depths of 260 nm in the ITO layer show an increase in light extraction of up to 32%, compared to conventional LEDs, without degradation in the electrical properties while a maximum enhancement of 26% is obtained from the device with a lattice constant of 460 nm and pillar heights of 60 nm on the p-GaN layer. The dependence of the extraction efficiency on the lattice constant is also calculated using a 3-D finite-difference time-domain method and compared with experimental results.
Keywords
III-V semiconductors; finite difference time-domain analysis; gallium compounds; lattice constants; light emitting diodes; nanophotonics; photonic crystals; sputter etching; wide band gap semiconductors; 3D finite-difference time-domain method; GaN; laser holography; lattice constants; light extraction efficiency; light-emitting diodes; nanometer-scale photonic crystal structures; reactive ion etching; Degradation; Electrodes; Etching; Gallium nitride; Holography; Indium tin oxide; Lattices; Light emitting diodes; Nanostructures; Photonic crystals; Gallium nitride; light extraction efficiency; light-emitting diode; photonic crystals;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.2010.2049827
Filename
5518522
Link To Document