Title :
A Reliable Split-Step Fourier Method for the Propagation Equation of Ultra-Fast Pulses in Single-Mode Optical Fibers
Author :
Deiterding, R. ; Glowinski, R. ; Oliver, H. ; Poole, Simon
Author_Institution :
Comput. Sci. & Math. Div., Oak Ridge Nat. Lab., Oak Ridge, TN, USA
Abstract :
The extension to the split-step Fourier method (SSFM) for Schrödinger-type pulse propagation equations that we propose in this article is designed with the accurate simulation of pulses in the femtosecond regime in single-mode communication fibers in mind. We show that via an appropriate operator splitting scheme, Kerr nonlinearity and the self-steepening and stimulated Raman scattering terms can be combined into a single sub-step consisting of an inhomogeneous quasilinear first-order hyperbolic system for the real-valued quantities intensity and phase. First- and second-order accurate shock-capturing upwind schemes have been developed specifically for this nonlinear sub-step, which enables the accurate and oscillation-free simulation of signals under the influence of Raman scattering and extreme self-steepening with the SSFM. Benchmark computations of ultra-fast Gaussian pulses in fibers with strong nonlinearity demonstrate the superior approximation properties of the proposed approach.
Keywords :
Fourier transform optics; Schrodinger equation; high-speed optical techniques; optical Kerr effect; optical fibre theory; stimulated Raman scattering; Fourier transformation; Kerr nonlinearity; SSFM; Schrodinger-type pulse propagation equations; central difference method; femtosecond pulses; inhomogeneous quasilinear first-order hyperbolic system; self-steepening; single-mode optical fibers; split-step Fourier method; stimulated Raman scattering; ultrafast Gaussian pulses; upwind approach; Accuracy; Approximation methods; Eigenvalues and eigenfunctions; Equations; Mathematical model; Raman scattering; Reliability; Fiber optical communication; Raman scattering; self-steepening; shock-capturing upwind scheme; split-step Fourier method (SSFM); ultra-fast Gaussian pulse;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2013.2262654