DocumentCode
748922
Title
Optical Feedback Tolerance of Quantum-Dot- and Quantum-Dash-Based Semiconductor Lasers Operating at 1.55
m
Author
Azouigui, Shéhérazade ; Dagens, Béatrice ; Lelarge, Francois ; Provost, Jean-Guy ; Make, Dalila ; Le Gouezigou, Odile ; Accard, Alain ; Martinez, Anthony ; Merghem, Kamel ; Grillot, Frédéric ; Dehaese, Olivier ; Piron, Rozenn ; Loualiche, Slimane ; Zou, Q
Author_Institution
Lab. for Photonics & Nanostruct., Centre Nat. de la Rech. Sci., Marcoussis
Volume
15
Issue
3
fYear
2009
Firstpage
764
Lastpage
773
Abstract
This paper reports on the tolerance of low-dimensional InAs/InP quantum-dash- and quantum-dot-based semiconductor lasers to optical feedback in the 1.55 mum window. For this purpose, the onset of coherence collapse (CC) is experimentally determined and systematically investigated as a function of different laser parameters, such as the injection current, differential gain, temperature, and photon lifetime. It is in particular found that for both material systems the onset of CC increases with the injection current in a similar way to bulk or quantum-well-based devices. Of most importance, we experimentally show that the differential gain plays a key role in the optical feedback tolerance. It is indeed shown to determine not only the range of the onset of CC but also the dependence of this threshold both on the temperature and laser cavity length. Increasing the operating temperature from 25degC to 85degC leads to a decrease of the onset of CC by a factor of only ~3 dB, well accounted for by the variation of the differential gain in this temperature range. We find no difference in the tolerance to external reflections of a truly 3-D confined quantum-dot-based laser and a quantum dash device of the same cavity length, which have similar differential gains. A tentative analysis of our data is finally carried out, based on existing models.
Keywords
III-V semiconductors; indium compounds; laser accessories; laser beams; laser cavity resonators; laser feedback; optical windows; quantum dash lasers; quantum dot lasers; thermo-optical effects; InAs-InP; coherence collapse; differential gain; injection current; laser cavity length; operating temperature; optical feedback tolerance; photon lifetime; quantum-dash-based semiconductor laser; quantum-dot-based semiconductor laser; temperature 25 degC to 35 degC; wavelength 1.55 mum; Coherence collapse; optical feedback; quantum dash; quantum dot; semiconductor laser;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2009.2013870
Filename
4838893
Link To Document