DocumentCode
1305150
Title
The Spectral Analysis and Threshold Limits of Quasi-Supercontinuum Self-Assembled Quantum Dot Interband Lasers
Author
Tan, Chee-Loon ; Wang, Yang ; Djie, Hery Susanto ; Ooi, Boon-Siew
Author_Institution
Dept. of Electr. & Comput. Eng., Lehigh Univ., Bethlehem, PA, USA
Volume
45
Issue
9
fYear
2009
Firstpage
1168
Lastpage
1176
Abstract
This paper presents a theoretical model to explain the quasi-supercontinuum interband emission from InGaAs/GaAs self-assembled semiconductor quantum dot lasers by accounting for both inhomogeneous and homogeneous optical gain broadening. The experimental and theoretical agreement of a room temperature (293 K) broadband laser emission confirms the presence of multiple-state lasing actions in highly inhomogeneous dot ensembles. The corresponding full-width half-maximum of the photoluminescence is 76 meV as opposed to those wideband lasing coverage at only low temperature (~60 K) from typical quantum dot lasers. A newly proposed change of homogeneous broadening with injection that occurs only in highly inhomogeneous quantum dot system is critical to account for the continuous wideband lasing but not the conventional ideas of carrier dynamics in semiconductor lasers. In addition, the analysis of threshold conditions reveals that broadband lasing only occurs when the energy spacing between quantized energy states is comparable to the inhomogeneous broadening of quantum-dot nanostructures. The study is important in providing a picture of this novel device and realization of broad lasing coverage for diverse applications, especially in the research field of short-pulse generation and ultra-fast phenomena in semiconductor quantum-dot laser.
Keywords
III-V semiconductors; gallium arsenide; indium compounds; nanophotonics; optical pulse generation; photoluminescence; quantum dot lasers; self-assembly; semiconductor quantum dots; spectral analysis; supercontinuum generation; InGaAs-GaAs; continuous wideband lasing action; multiple-state lasing action; optical gain broadening; photoluminescence; quantized energy states; quantum-dot nanostructures; quasisupercontinuum self-assembled laser; semiconductor quantum dot interband laser; short-pulse generation; spectral analysis; temperature 293 K to 298 K; ultra-fast phenomena; Gallium arsenide; Indium gallium arsenide; Laser modes; Laser theory; Quantum dot lasers; Quantum mechanics; Semiconductor lasers; Spectral analysis; Temperature; Wideband; Semiconductor laser; broadband laser; homogeneous broadening; inhomogeneous broadening; optical gain broadening; self-assembled quantum dot; supercontinuum;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.2009.2020055
Filename
5210257
Link To Document