Title :
Theory and experiments of a mode-beating noise-suppressed and mutually injection-locked Fabry-Perot laser diode and erbium-doped fiber amplifier link
Author :
Lin, Gong-Ru ; Lin, Yu-Huang ; Chang, Yung-Cheng
Author_Institution :
Inst. of Electro-Opt. Eng., Nat. Chiao Tung Univ., Taiwan
Abstract :
By using Fabry-Perot laser diode (FPLD) as a resonant ultranarrow bandpass filter in an Erbium-doped fiber amplifier or laser (EDFA or EDFL), the theory and experiment for side-mode suppression and linewidth reduction of mutually injection-locked EDFL-FPLD and EDFA-FPLD links are demonstrated. Based on the amplified feedback injection loop, the 3-dB linewidth of 3.4 MHz for the EDFA-FPLD link is determined by using self-heterodyne interferometric spectral analysis. The EDFA-FPLD link exhibits a nearly mode-beating noise-free performance as compared to the EDFL-FPLD link. This is due to the release of the resonant cavity configuration in the EDFL-FPLD link at a cost of slightly lower side-mode suppression ratio (∼42 dB). The maximum output power of the EFDA-FPLD link is 20 mW under an FPLD input power of 0.1 mW.
Keywords :
erbium; laser cavity resonators; laser feedback; laser mode locking; laser modes; laser noise; light interferometry; optical fibre amplifiers; optical fibre communication; optical filters; semiconductor lasers; spectral analysis; spectral line narrowing; 0.1 mW; 20 mW; 3.4 MHz; Fabry-Perot laser diode; amplified feedback injection loop; erbium-doped fiber amplifier link; linewidth reduction; mode-beating performance; mutually injection-locked laser diode; noise-suppressed performance; resonant cavity configuration; resonant ultranarrow bandpass filter; self-heterodyne interferometric spectral analysis; side-mode suppression; Band pass filters; Diode lasers; Erbium-doped fiber amplifier; Erbium-doped fiber lasers; Fabry-Perot; Laser feedback; Laser modes; Laser noise; Laser theory; Resonance; Erbium-doped fiber amplifier; Fabry–Perot laser diode; linewidth; mode beating noise; mutual injection locking; side-mode suppression ratio;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2004.831622