DocumentCode :
755413
Title :
Photonic-crystal distributed-feedback quantum cascade lasers
Author :
Vurgaftman, Igor ; Meyer, Jerry R.
Author_Institution :
Naval Res. Lab., Washington, DC, USA
Volume :
38
Issue :
6
fYear :
2002
fDate :
6/1/2002 12:00:00 AM
Firstpage :
592
Lastpage :
602
Abstract :
Because of an intrinsically low linewidth-enhancement factor, the quantum cascade laser (QCL) is especially favorable for patterning with a recently proposed 2-D photonic crystal (PC) lattice that substantially increases the device area over which optical coherence can be maintained. In this work, we use an original time-domain Fourier-transform (TDFT) algorithm to theoretically investigate the beam quality and spectral purity of gain-guided PC distributed-feedback (DFB) quantum cascade lasers. The conventional 1-D DFB laser and also the angled-grating DFB (α-DFB) laser are special cases of the PCDFB geometry. By searching the parameter space consisting of tilt angle, coupling coefficients, stripe width, and cavity length, we have theoretically optimized the PCDFB gratings for QCL gain regions. At a wavelength of 4.6 μm, the simulations project single-mode emission from stripes as wide as 1.2 mm, and etendues of no more than three times the diffraction limit for 2-mm stripes. We also examine the tolerances required for single-mode and high-brightness operation. Comparisons are made to analogous simulations of a-DFB QCL lasers
Keywords :
Fourier transform optics; diffraction gratings; distributed feedback lasers; laser cavity resonators; laser modes; laser theory; laser transitions; photonic band gap; quantum well lasers; time-domain analysis; 1-D DFB laser; 2-D photonic crystal lattice; PCDFB grating optimization; angled-grating DFB laser; beam quality; cavity length; coupling coefficients; device area; gain-guided PC DFB quantum cascade lasers; high-brightness operation; laser simulations; low linewidth-enhancement factor; optical coherence; parameter space; patterning; photonic-crystal distributed-feedback quantum cascade lasers; single-mode emission; spectral purity; stripe width; tilt angle; time-domain Fourier-transform algorithm; Geometrical optics; Gratings; Laser beams; Laser theory; Lattices; Optical devices; Photonic crystals; Quantum cascade lasers; Quantum mechanics; Time domain analysis;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2002.1005409
Filename :
1005409
Link To Document :
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