Title :
High-frequency pulsations in DFB lasers with amplified feedback
Author :
Brox, Olaf ; Bauer, Stefan ; Radziunas, Mindaugas ; Wolfrum, Matthias ; Sieber, Jan ; Kreissl, Jochen ; Sartorius, Bernd ; Wünsche, Hans-Jürgen
Author_Institution :
Fraunhofer-Inst. fur Nachrichtentechnik Heinrich-Hertz-Inst., Berlin, Germany
Abstract :
We describe the basic ideas behind the concept of distributed feedback (DFB) lasers with short optical feedback for the generation of high-frequency self-pulsations and show the theoretical background describing realized devices. It is predicted by theory that the self-pulsation frequency increases with increasing feedback strength. To provide evidence for this, we propose a novel device design which employs an amplifier section in the integrated feedback cavity of a DFB laser. We present results from numerical simulations and experiments. It has been shown experimentally that a continuous tuning of the self-pulsation frequency from 12 to 45 GHz can be adjusted via the control of the feedback strength. The numerical simulations, which are in good accordance with experimental investigations, give an explanation for a self-stabilizing effect of the self-pulsations due to the additional carrier dynamic in the integrated feedback cavity.
Keywords :
distributed feedback lasers; laser cavity resonators; laser theory; laser tuning; semiconductor optical amplifiers; 12 to 45 GHz; DFB lasers; additional carrier dynamic; amplified feedback; amplifier section; continuous tuning; device design; distributed feedback lasers; feedback strength control; high-frequency self-pulsations; integrated feedback cavity; numerical simulations; self-stabilizing effect; short optical feedback; Distributed feedback devices; Frequency; Laser feedback; Laser theory; Laser tuning; Optical feedback; Optical refraction; Optical resonators; Optical signal processing; Semiconductor lasers;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2003.818313