DocumentCode
28789
Title
A Comprehensive Study of Actively Mode-Locked Fiber Optical Parametric Oscillators for High-Speed Pulse Generation
Author
Jia Li ; Tianye Huang ; Chen, Lawrence R.
Author_Institution
Dept. of Electr. & Comput. Eng, McGill Univ., Montreal, QC, Canada
Volume
31
Issue
7
fYear
2013
fDate
1-Apr-13
Firstpage
1120
Lastpage
1131
Abstract
We perform a comprehensive study on the implementation of active harmonic and rational harmonic mode-locking of a fiber optical parametric oscillator (FOPO). In particular, the effect of pump parameters and cavity designs on the characteristics of the generated pulses are analyzed. Two methods of frequency multiplication in FOPOs are discussed and compared and we show that we can generate optical pulses with very high-repetition-rate (up to 240 GHz) using rational harmonic mode-locking. We find that optical pulses with short duration can be obtained using pump pulses with small duty cycle, large pump power, and an intra-cavity optical filter with proper bandwidth. In addition, optical pulses with low root-mean-square timing jitter are achievable when no pump phase modulation is applied and hybrid gain of erbium-doped fiber amplifier and parametric amplifier is used. High supermode noise suppression ratio is achieved by taking advantage of the fast parametric gain and the combined effect of self-phase modulation and spectral filtering. We conclude that synchronous-pumping of an actively mode-locked FOPO offers many advantages in terms of reducing the cavity loss, increasing the modulation frequency, enabling rational harmonic mode-locking, and applications to all-optical clock recovery.
Keywords
erbium; laser cavity resonators; laser mode locking; laser modes; laser noise; optical fibre amplifiers; optical filters; optical harmonic generation; optical modulation; optical parametric oscillators; optical pulse generation; optical pumping; self-phase modulation; synchronisation; FOPO; active harmonic mode-locking; all-optical clock recovery; cavity designs; cavity loss; duty cycle; erbium-doped fiber amplifier; fiber optical parametric oscillators; frequency multiplication; high-speed pulse generation; intracavity optical filter; modulation frequency; parametric amplifier; pump power; rational harmonic mode-locking; root-mean-square timing jitter; self-phase modulation; spectral filtering; supermode noise suppression ratio; synchronous-pumping; Bandwidth; Cavity resonators; Dispersion; Modulation; Optical fiber amplifiers; Optical fiber devices; Optical pulses; Fiber lasers; Kerr effect; fiber optical parametric oscillators; laser mode-locking; nonlinear optical devices; optical signal processing;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2013.2243106
Filename
6420855
Link To Document