DocumentCode
1358312
Title
Light Energy Extraction From the Minor Surface Arc of an Electrically Pumped Elliptical Microcavity Laser
Author
Khoo, Eng Huat ; Li, Er Ping ; Ahmed, Iftikhar ; Huang, Yingyan ; Ho, Seng Tiong
Author_Institution
Adv. Plasmonics & Photonics Team, Inst. of High-Performance Comput., Singapore, Singapore
Volume
46
Issue
1
fYear
2010
Firstpage
128
Lastpage
136
Abstract
In this paper, the efficiency of extracting light energy from the minor surface arc of the elliptical microcavity laser is investigated for the first time using the dynamic thermal electron quantum medium finite-difference time-domain model. Light energy is extracted from the minor surface arc of the elliptical microcavity to a perpendicular waveguide. It is deduced from the field distribution that extraction efficiency of the TM polarization is higher due to wider transverse field profile. Optimum light energy is extracted when the waveguide is 0.342 ¿m away from the edge of the elliptical minor arc. Higher extraction efficiency is also obtained when the waveguide index is lower than the microcavity index. It is believed that this method of extracting light energy allows for smaller device size with higher power output for building photonic integrated circuit.
Keywords
finite difference time-domain analysis; microcavity lasers; semiconductor lasers; waveguide lasers; dynamic thermal electron quantum medium; electrical pump; elliptical microcavity laser; extraction efficiency; finite-difference time-domain model; light energy extraction; microcavity index; minor surface arc; waveguide index; Electrons; Finite difference methods; Laser excitation; Laser modes; Microcavities; Pump lasers; Surface emitting lasers; Surface waves; Time domain analysis; Waveguide lasers; Coupling; electrically pumped; elliptical; finite-difference time domain (FDTD); microcavity; quantum dynamics; semiconductor laser;
fLanguage
English
Journal_Title
Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
0018-9197
Type
jour
DOI
10.1109/JQE.2009.2028436
Filename
5353808
Link To Document