Title :
On the joint effects of fiber parametric gain and birefringence and their influence on ASE noise
Author :
Carena, Andrea ; Curri, Vittorio ; Gaudino, Roberto ; Poggiolini, Pierluigi ; Benedetto, Sergio
Author_Institution :
Dipt. di Elettronica, Politecnico di Torino, Italy
fDate :
7/1/1998 12:00:00 AM
Abstract :
Parametric gain (PG) in optical fibers may substantially enhance amplified spontaneous emission (ASE) noise, especially in long-haul amplified links. We present new results that permit to accurately characterize the effects of PG on ASE noise, as well as the interplay of PG and ASE noise with fiber dispersion in both the anomalous and normal dispersion regions. In a recent letter, we introduced the concept of a PG transfer matrix, that allows the easy evaluation of ASE noise enhancement over chains of amplified fiber spans. In the same letter we showed that the transfer matrix can be expressed in analytical closed-form when a scalar (single polarization) fiber is assumed. In this paper we extend the analysis to a more realistic two-polarization fiber model that accounts for both linear and nonlinear polarization coupling effects. We show that the new transfer matrix does not have an analytical expression, but can be easily evaluated using standard numerical algorithms. ASE noise enhancement due to PG turns out to be slightly lower in a realistic birefringent two-polarization fiber than a single-polarization fiber. An interesting result is that the single polarization model yields a convenient approximation to ASE noise enhancement, that can be evaluated analytically
Keywords :
birefringence; nonlinear optics; optical fibre communication; optical fibre dispersion; optical fibre polarisation; optical fibre theory; superradiance; ASE noise; ASE noise enhancement; PG transfer matrix; amplified fiber spans; amplified spontaneous emission noise; analytical closed-form; anomalous dispersion regions; birefringence; fiber dispersion; fiber parametric gain; linear polarization coupling effects; long-haul amplified links; nonlinear polarization coupling effects; normal dispersion regions; optical fibers; single polarization fiber; standard numerical algorithms; transfer matrix; two-polarization fiber model; Birefringence; Optical fiber communication; Optical fiber dispersion; Optical fiber polarization; Optical fibers; Optical noise; Polarization mode dispersion; Pulse modulation; Spontaneous emission; System performance;
Journal_Title :
Lightwave Technology, Journal of