Title :
Dynamic behavior of fundamental-mode stabilized VCSELs using a shallow surface relief
Author :
Gustavsson, Johan S. ; Haglund, Åsa ; Bengtsson, Jörgen ; Modh, Peter ; Larsson, Anders
Author_Institution :
Dept. of Microtechnology & Nanoscience, Chalmers Univ. of Technol., Goteborg, Sweden
fDate :
6/1/2004 12:00:00 AM
Abstract :
An extensive theoretical study was performed on the dynamic behavior of 850-nm-wavelength oxide-confined fundamental-mode stabilized vertical-cavity surface-emitting lasers (VCSELs), using a shallow surface relief. The surface relief is used to provide lower mirror loss for the fundamental mode, thus acting as a mode discriminator. In this way, single-mode operation at high power levels can be obtained. We utilized a comprehensive model that includes the detailed epitaxial layer structure and device geometry when calculating the optical fields and that accurately accounts for the dynamic effects of carrier density and temperature on the modal distributions. Modulation response, eye diagrams, bit error rate (BER), and relative intensity noise (RIN) were simulated and compared to the performance of VCSELs without a mode discriminator, i.e., conventional multimode VCSELs. The fundamental-mode stabilized VCSELs are associated with a higher out-coupling, which lowers the relaxation oscillation frequency and damping, and strong spatial hole burning, which induces a low-frequency roll-off in the modulation response and contributes to the damping of the relaxation oscillation at low bias. However, their dynamics is fully competitive with conventional multimode VCSELs at both 2.5 and 10 Gb/s although they exhibit a slightly higher eye closure. We only found a 0.5-dB power penalty in the BER. The RIN is enhanced, with a peak that is about 10-15 dB higher, caused by the lower damping of the relaxation oscillation. It should be noted that in the comparison we assume that all modes are equally captured from the multimode VCSEL. A mode-selective loss can severely degrade its performance.
Keywords :
error statistics; laser cavity resonators; laser mirrors; laser modes; laser noise; laser stability; optical communication equipment; optical hole burning; optical losses; optical modulation; semiconductor device models; semiconductor lasers; surface emitting lasers; 10 Gbit/s; 2.5 Gbit/s; 850 nm; bit error rate; carrier density; damping; device geometry; dynamic effects; epitaxial layer structure; eye diagrams; fundamental-mode stabilized VCSEL; mirror loss; modal distributions; mode discriminator; mode-selective loss; modulation response; multimode VCSEL; optical fields; oxide-confined VCSEL; relaxation oscillation frequency; shallow surface relief; single-mode operation; spatial hole burning; vertical cavity surface emitting laser; Bit error rate; Damping; Laser modes; Laser stability; Laser theory; Mirrors; Optical losses; Optical noise; Surface emitting lasers; Vertical cavity surface emitting lasers; Dynamics; VCSEL; modeling; single mode; surface relief; vertical-cavity surface-emitting laser;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2004.828273