Title :
Effect of optical feedback on 60-GHz colliding-pulse semiconductor mode-locked lasers
Author :
Passerini, Marco ; Giuliani, Guido ; Sorel, Marc
Author_Institution :
Dipt. di Elettronica, Univ. di Pavia, Italy
fDate :
5/1/2005 12:00:00 AM
Abstract :
We have experimentally investigated on the effects of optical feedback on the performance of monolithic colliding-pulse passively mode-locked semiconductor lasers operating at 60 GHz, designed to be efficient sources of millimeter-wave electrical signals. The characteristics of the optical-to-electrical converted signal are investigated for a long and a short external cavity by means of an external photodiode and by using the saturable absorber of the device as an intracavity photodetector. For a power feedback ratio larger than 10-3, the linewidth of the millimeter-wave signal is severely broadened with respect to the value of 230 kHz measured in unperturbed conditions. We also report that optical feedback causes central frequency shift and instability, and a reduction of the useful colliding-pulse mode-locked operating region in the biasing parameters of the device.
Keywords :
integrated optoelectronics; laser cavity resonators; laser feedback; laser mode locking; millimetre wave generation; monolithic integrated circuits; optical saturable absorption; photodetectors; photodiodes; semiconductor lasers; spectral line broadening; spectral line shift; 60 GHz; biasing device parameters; central frequency shift; colliding-pulse lasers; external cavity; external photodiode; intracavity photodetector; millimeter-wave electrical signals; millimeter-wave signal broadening; mode-locked lasers; monolithic lasers; optical feedback effects; optical instability; power feedback ratio; saturable absorber; semiconductor lasers; unperturbed conditions; Laser feedback; Laser mode locking; Millimeter wave measurements; Optical design; Optical devices; Optical feedback; Photodetectors; Photodiodes; Semiconductor lasers; Signal design; Millimeter-wave generation; mode-locking; optical feedback; optoelectronic integrated circuits; semiconductor laser;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2005.846764