Title :
50-Gb/s Direct Modulation of a 1.3-μm InGaAlAs-Based DFB Laser With a Ridge Waveguide Structure
Author :
Kobayashi, Wataru ; Ito, Takao ; Yamanaka, T. ; Fujisawa, T. ; Shibata, Yoshitaka ; Kurosaki, T. ; Kohtoku, M. ; Tadokoro, T. ; Sanjoh, H.
Author_Institution :
NTT Photonics Labs., NTT Corp., Atsugi, Japan
Abstract :
We demonstrate 50-Gb/s direct modulation by using 1.3-μm distributed-feedback lasers with a ridge waveguide structure. We employed InGaAlAs material for a multiple-quantum well to obtain a low damping factor K, and fabricated a ridge waveguide structure buried in benzocyclobutene to realize a structure with a low parasitic capacitance. In addition, to obtain high maximum frequency relaxation oscillations fr, we designed the cavity length L), and achieved a 3-dB-down frequency bandwidth of 34 GHz. We realized 50-Gb/s clear eye openings with a back-to-back configuration, and achieved a mean output power of over 5.0 dBm, and a dynamic extinction ratio of 4.5 dB. We measured the 50-Gb/s transmission characteristics, and obtained clear eye openings for transmissions over 20-, 40-, and 60-km single-mode fibers (SMF). We also measured the bit-error-rate performance, and obtained an error-free operation and a power penalty of less than 0.5 dB after a 10-km SMF transmission.
Keywords :
distributed feedback lasers; gallium arsenide; gallium compounds; indium compounds; laser cavity resonators; laser transitions; optical communication equipment; optical modulation; quantum well lasers; ridge waveguides; waveguide lasers; DFB laser; InGaAlAs; SMF; bandwidth 34 GHz; benzocyclobutene; bit rate 50 Gbit/s; bit-error-rate performance; cavity length; damping factor; direct modulation; distributed-feedback lasers; dynamic extinction ratio; frequency relaxation oscillations; multiple-quantum well; parasitic capacitance; ridge waveguide structure; single-mode fibers; wavelength 1.3 mum; Bandwidth; Cavity resonators; Damping; Frequency response; Resistance; Temperature measurement; Waveguide lasers; Direct modulation; InGaAlAs; directly modulated laser (DML); distributed-feedback (DFB) lasers; ridge waveguide structure;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2013.2238509