Title :
Progress in GaN-based quantum dots for optoelectronics applications
Author :
Arakawa, Yasuhiko
Author_Institution :
Res. Center for Adv. Sci. & Technol., Univ. of Tokyo, Japan
Abstract :
Our recent progress in GaN-based quantum dots (QDs) for optoelectronics application is discussed. First, we discussed an impact of the use of GaN-based QDs on semiconductor lasers, showing theoretically that reduction of threshold current by using the QDs in GaN-based lasers is much more effective compared to those in GaAs-based or InP-based lasers. Then discussed are our growth technology including self-assembling growth of InGaN QDs on sapphire substrates by atmospheric-pressure metalorganic chemical vapor deposition. Using the self-assembling growth technique, we have succeeded in obtaining lasing action in an edge-emitting laser structure with the InGaN QDs embedded in the active layer under optical excitation with the emission wavelength of 410 nm. Toward UV light wavelength emission, we have recently established self-assembled GaN QDs of high quality and high density under very low V-III ratio. We clearly observed two photoluminescence peaks from both the QDs and the wetting layer at room temperature, which clearly shows the nanostructures are formed with the Stranski-Krastanow growth mode.
Keywords :
III-V semiconductors; MOCVD; gallium compounds; indium compounds; laser transitions; nanostructured materials; optical fabrication; photoluminescence; quantum well lasers; self-assembly; semiconductor quantum dots; 410 nm; GaN; GaN-based QDs; GaN-based lasers; GaN-based quantum dots; InGaN; InGaN QDs; Stranski-Krastanow growth mode; UV light wavelength emission; active layer; atmospheric-pressure metalorganic chemical vapor deposition; edge-emitting laser structure; emission wavelength; growth technology; high density; lasing action; nanostructures; optical excitation; optoelectronics applications; photoluminescence peaks; room temperature; sapphire substrates; self-assembled GaN QDs; self-assembling growth; self-assembling growth technique; semiconductor lasers; threshold current; wetting layer; Atmospheric waves; Chemical lasers; Chemical technology; Chemical vapor deposition; Laser theory; Quantum dot lasers; Quantum dots; Semiconductor lasers; Substrates; Threshold current;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2002.801675