Title :
A fully integratable 1.55-μm wavelength continuously tunable asymmetric twin-waveguide distributed Bragg reflector laser
Author :
Hongsheng Wang ; Chunqian Li ; Forrest, S.R.
Author_Institution :
Dept. of Electr. Eng., Princeton Univ., NJ, USA
Abstract :
We demonstrate a single-frequency continuously tunable three-section distributed Bragg reflector laser operating at a center wavelength of /spl lambda/0=1.548 μm using a fully integratable asymmetric twin-waveguide structure. A low-loss tapered mode transformer couples the light between the active waveguide, or gain region, and the passive ridge waveguide where the phase and grating tuning sections are located. The device has a threshold current of 50 mA and output power of nearly 13 mW, with a slope efficiency of 0.12 W/A and a tuning range of 4.8 nm under pulsed operation. An independent phase section is used to continuously tune the wavelength, thus avoiding mode hops. Using a delayed self-heterodyne technique, we determine the linewidth to be (146/spl plusmn/2) kHz.
Keywords :
III-V semiconductors; distributed Bragg reflector lasers; gallium arsenide; gallium compounds; indium compounds; laser transitions; laser tuning; optical communication equipment; optical losses; quantum well lasers; waveguide lasers; 1.548 micron; 1.55 micron; 13 mW; 50 mA; InGaAsP; active waveguide; asymmetric twin-waveguide structure; center wavelength; delayed self-heterodyne technique; fully integratable wavelength continuously tunable asymmetric twin-waveguide distributed Bragg reflector laser; gain region; grating tuning sections; independent phase section; linewidth; low-loss tapered mode transformer; mode hops; output power; passive ridge waveguide; phase sections; single-frequency continuously tunable three-section distributed Bragg reflector laser; threshold current; tuning range; Delay; Distributed Bragg reflectors; Gratings; Laser modes; Laser tuning; Optical coupling; Power generation; Threshold current; Tunable circuits and devices; Waveguide lasers;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2003.816669