Optimization of the frequency response of a semiconductor optical amplifier wavelength converter using a fiber Bragg grating

Cross-gain modulation in a semiconductor optical amplifier (SOA) is one of the simplest techniques for all-optical wavelength conversion. However, the finite gain recovery time of the semiconductor optical amplifier causes distortion and pattern dependence at high bit rates. Here we show that filtering the output of a semiconductor optical amplifier wavelength converter with the transmission edge of a fiber grating filter improves its frequency response. The grating sharpens the transition between the bits by converting the phase modulation at the edge to useful amplitude modulation. We determine the filtering condition that produces the optimum frequency response and reduces bit-pattern dependence for nonreturn-to-zero (NRZ) data. For small modulation, the apparent frequency response increases by the linewidth enhancement factor /spl alpha//sub H/ of the SOA. In this case, pattern dependence is eliminated completely by the fiber grating filter. For large modulation, pattern dependence can be substantially reduced, but not completely eliminated. We show that after spectral filtering, the residual pattern dependence of an SOA depends only on modulation depth. For a given SOA, we find the optimum grating for minimum conversion penalty at 12 Gb/s for a wide range of operating parameters. Using a fiber grating filter reduces the required optical power for conversion in a semiconductor optical amplifier.

[1]  A. Yariv,et al.  Improved laser modulation response by frequency modulation to amplitude modulation conversion in transmission through a fiber grating , 1997 .

[2]  Kerry J. Vahala,et al.  Measurement of the linewidth enhancement factor alpha of semiconductor lasers , 1983 .

[3]  K. Vahala,et al.  Measurement of the linewidth enhancement factor α of semiconductor lasers , 1983 .

[4]  Miguel A. Muriel,et al.  Phase reconstruction from reflectivity in fiber Bragg gratings , 1997 .

[5]  N. Olsson,et al.  Self-phase modulation and spectral broadening of optical pulses in semiconductor laser amplifiers , 1989 .

[6]  Dirk Breuer,et al.  Performance analysis of wavelength converters based on cross-gain modulation in semiconductor-optical amplifiers , 1998 .

[7]  Improved frequency response of a semiconductor-optical-amplifier wavelength converter using a fiber Bragg grating , 1997, 1997 Digest of the IEEE/LEOS Summer Topical Meeting: Vertical-Cavity Lasers/Technologies for a Global Information Infrastructure/WDM Components Technology/Advanced Semiconductor Lasers and Application.

[8]  S. L. Danielsen,et al.  All-optical wavelength conversion by semiconductor optical amplifiers , 1996 .

[9]  High performance non-interferometric semiconductor-optical-amplifier/fibre-Bragg-grating wavelength converter , 1998 .

[10]  J.J. Chen,et al.  The gain decompression effect and its applications to very fast wavelength conversions , 1997, IEEE Photonics Technology Letters.

[11]  A. Yariv Introduction to optical electronics , 1971 .