Title :
Ultralow Phase Noise Microwave Generation From Mode-Locked Er-Fiber Lasers With Subfemtosecond Integrated Timing Jitter
Author :
Kwangyun Jung ; Junho Shin ; Jungwon Kim
Author_Institution :
Sch. of Mech., Aerosp. & Syst. Eng., Korea Adv. Inst. of Sci. & Technol. (KAIST), Daejeon, South Korea
Abstract :
We demonstrate ultralow phase noise 10-GHz microwave signal generation from a free-running mode-locked Er-fiber laser with -142- and -157-dBc/Hz single-sideband absolute phase noise at 10- and 100-kHz offset frequencies, respectively. The absolute RMS timing jitter is 1.5 fs when integrated from 1-kHz to 5-GHz (Nyquist frequency) offset frequency. In the 10-kHz to 10-MHz integration bandwidth typically used for microwave generators, the RMS integrated jitter is 0.49 fs. The Er-fiber laser is operated in the stretched-pulse regime at close-to-zero dispersion to minimize the phase noise of extracted microwaves. In order to suppress the excess phase noise in the optical-to-electronic conversion process, we synchronize a low-noise voltage-controlled oscillator to the fiber laser using a fiber Sagnac-loop-based optical-microwave phase detector.
Keywords :
Sagnac interferometers; erbium; fibre lasers; high-speed optical techniques; laser mode locking; laser noise; microwave photonics; optical fibre dispersion; optical pulse generation; phase detectors; phase noise; timing jitter; voltage-controlled oscillators; Er-fiber lasers; Nyquist frequency; absolute RMS timing jitter; fiber Sagnac-loop-based optical-microwave phase detector; frequency 10 GHz; frequency 10 kHz; frequency 100 kHz; laser mode locking; low-noise voltage-controlled oscillator; microwave signal generation; optical-to-electronic conversion process; phase noise; single-sideband absolute phase noise; subfemtosecond integrated timing jitter; time 0.49 fs; time 1.5 fs; ultralow phase noise microwave generation; Laser mode locking; Laser noise; Masers; Microwave oscillators; Microwave photonics; Phase noise; Frequency combs; fiber lasers; microwave photonics signal processing; mode-locked lasers; ultrafast technology;
Journal_Title :
Photonics Journal, IEEE
DOI :
10.1109/JPHOT.2013.2267533