DocumentCode :
1116597
Title :
Locking and Noise Properties of Multisection Semiconductor Lasers With Optical Injection. Application to Fabry–PÉrot and DFB Cavities
Author :
Kéfélian, Fabien ; Gallion, Philippe
Author_Institution :
Lab. de Phys. des Lasers, Univ. Paris-XIII, Villetaneuse
Volume :
44
Issue :
6
fYear :
2008
fDate :
6/1/2008 12:00:00 AM
Firstpage :
547
Lastpage :
560
Abstract :
An analytical theory is presented for the study of injection locking in multisection semiconductor lasers. The Helmoltz equation for the electric field is solved using the Green´s function method and the injected fields are included via the boundary conditions. Two cases are distinguished, injection through the front facet of the laser and injection through the rear facet. In both cases, an equation of evolution for the envelope of the electric field is established, taking into account the longitudinal distribution of the carrier and photon densities and the nonlinear gain. The expressions of the intensity, phase and carrier density noise spectra are derived using a matrix formulation. Comparison to classical equations used for Fabry-Perot lasers is discussed. The locking properties of a distributed feedback laser with an antireflection coated front facet are studied in detail. Results demonstrate the strong sensitivity of the locking properties on the phase grating and rear facet reflectivity.
Keywords :
Fabry-Perot resonators; Green´s function methods; Helmholtz equations; antireflection coatings; carrier density; distributed feedback lasers; injection locked oscillators; laser cavity resonators; laser noise; semiconductor lasers; DFB cavities; Fabry-Perot cavities; Fabry-Perot lasers; Green´s function method; Helmoltz equation; antireflection coating; boundary conditions; carrier densities; distributed feedback laser; electric field; injection locking; matrix formulation; multisection semiconductor lasers; noise properties; nonlinear gain; optical injection; phase grating; photon densities; rear facet reflectivity; Distributed feedback devices; Laser feedback; Laser noise; Laser theory; Nonlinear equations; Nonlinear optics; Optical feedback; Optical noise; Semiconductor device noise; Semiconductor lasers; Distributed-feedback lasers; injection-locked oscillators; optical noise; semiconductor lasers;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2008.917239
Filename :
4479653
Link To Document :
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