Title :
Impact of dispersion, PMD, and PDL on the performance of spectrum-sliced incoherent light sources using gain-saturated semiconductor optical amplifiers
Author :
Kim, Hoon ; Kim, Sangho ; Hwang, Seongtaek ; Oh, Yunje
Author_Institution :
Telecommun. R&D Center, Samsung Electron. Co., Kyunggi-Do, South Korea
Abstract :
The effects of chromatic dispersion (CD), polarization-mode dispersion (PMD), and polarization-dependent loss (PDL) on the intensity noise suppression of spectrum-sliced incoherent light sources achieved by using gain-saturated (GS) semiconductor optical amplifiers (SOAs) are investigated. Passing the spectrum-sliced incoherent light through SOAs, the excess intensity noise (EIN) originating from beating of spontaneous emission against itself can be greatly reduced. However, since the noise suppression is achieved by an elaborate balancing between numerous frequency/polarization components of light, thus, forming a high correlation between them, it is vulnerable to frequency/polarization-dependent optical phenomena. Through Q-factor and bit error rate (BER) measurements, this paper shows that CD, PMD, or PDL deteriorates the SOA-based noise suppression technique by breaking the correlation. Spectral analysis is also performed to investigate the frequency dependency of these effects. It is shown that CD and PMD negate the noise suppression giving rise to intensity noise from high frequencies, whereas there is no frequency dependence for PDL effects. Therefore, CD-, PMD-, or PDL-induced penalties for incoherent light sources using the SOA-based noise suppression technique are considerably greater than those produced by pulse broadening or distortion alone.
Keywords :
Q-factor; error statistics; laser noise; light coherence; optical communication equipment; optical correlation; optical fibre communication; optical fibre dispersion; optical fibre losses; optical fibre polarisation; optical saturation; semiconductor optical amplifiers; spectral analysis; spontaneous emission; Q-factor; bit error rate; chromatic dispersion; dispersion-induced penalties; excess intensity noise; frequency-dependent optical phenomena; gain saturation; incoherent light sources; intensity noise suppression; optical correlation; polarization-dependent loss; polarization-dependent optical phenomena; polarization-mode dispersion; semiconductor optical amplifiers; spectral analysis; spectrum-sliced light sources; spontaneous emission beating; Bit error rate; Chromatic dispersion; Frequency; Light sources; Optical noise; Optical polarization; Page description languages; Polarization mode dispersion; Semiconductor device noise; Semiconductor optical amplifiers; Optical noise; semiconductor optical amplifier (SOA); spectrum slicing; wavelength division multiplexing;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2005.862450