DocumentCode :
1210424
Title :
Design optimization for high-brightness surface-emitting photonic-crystal distributed-feedback lasers
Author :
Vurgaftman, Igor ; Meyer, Jerry R.
Author_Institution :
Naval Res. Lab., Washington, DC, USA
Volume :
39
Issue :
6
fYear :
2003
fDate :
6/1/2003 12:00:00 AM
Firstpage :
689
Lastpage :
700
Abstract :
A new time-domain Fourier-Galerkin (TDFG) theory is developed to simulate the near-field, far-field and spectral characteristics of surface-emitting photonic-crystal distributed-feedback (SE PCDFB) lasers. It is found that a properly-designed two-dimensional hexagonal or square-lattice grating should efficiently couple the output into a single SE mode that retains coherence for aperture diameters of up to ≈1 mm. We identify lattice structures and precise conditions under which all components of the transverse electric or transverse magnetic polarized optical fields constructively interfere to produce a single-lobed, near-diffraction-limited circular output beam. The TDFG simulations predict that quantum efficiencies as high as 30% (60% if reflectors are built into the waveguide structure) should be attainable. A surprising conclusion is that diffractive coupling into the surface-emitting direction must be relatively weak, in order to assure selection of the desired symmetric in-phase mode. Furthermore, gain media with a moderate linewidth enhancement factor should produce the best SE PCDFB performance, whereas edge emitters nearly always benefit from a very small value.
Keywords :
Fourier transform optics; Galerkin method; diffraction gratings; distributed feedback lasers; laser theory; optical design techniques; photonic crystals; semiconductor lasers; spectral line breadth; surface emitting lasers; time-domain analysis; wave equations; 1 mm; aperture diameters; coherence; design optimization; diffractive coupling; edge emitters; far-field characteristics; gain media; high-brightness surface-emitting photonic-crystal distributed-feedback lasers; lattice structures; linewidth enhancement factor; near-field characteristics; precise conditions; quantum efficiencies; reflectors; single surface-emitting mode; single-lobed near-diffraction-limited circular output beam; spectral characteristics; square-lattice grating; surface-emitting direction; symmetric in-phase mode; time-domain Fourier-Galerkin theory; transverse electric polarized optical fields; transverse magnetic polarized optical fields; two-dimensional hexagonal grating; waveguide structure; Apertures; Coherence; Design optimization; Gratings; Laser modes; Laser theory; Optical surface waves; Optical waveguides; Surface emitting lasers; Time domain analysis;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2003.811943
Filename :
1201561
Link To Document :
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