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Proceedings ArticleDOI

Role of negative-third order dispersion, intrapulse Raman scattering and self steepening effect on soliton intra-channel interaction

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TLDR
In this paper, the combined influence of Intrapulse Raman Scattering (IRS), Self-Steepening (SS) and negative Third Order Dispersion (n-TOD) on soliton interaction is demonstrated.
Abstract
Here, we demonstrate the combined influence of Intrapulse Raman Scattering (IRS), Self-Steepening (SS) and negative Third Order Dispersion (n-TOD) on soliton interaction. The peculiar particle nature of soliton results in interaction of in-phase adjacent pulses while helps in deviation of out-of phase pulses. We show how the interaction of the soliton can be avoided due to combined effect of IRS, SS and negative TOD as these effects apart from various nonlinear dynamics results in shifting of pulses. The interaction point of solitons in 160 Gbps system is found to be at 24.22Km for an initial relative spacing of qo=5.28 using Perturbation theory. This in-phase soliton pair tracing inside the fiber in noted using Split-Step Fourier Transform. Further, impact of interaction is realized in 160 Gbps telecommunication model which yielded Q=0 at Ip depicting perfect interaction resulting in bit error without influence while yielded fair Quality facto of 112.375, 124.59, 93.57, 75.12, 63.23 and 46.97 with influence for various TOD values of -0.03, -0.04, -0.05, -0.06, -0.07 and -0.09 ps3/Km and TR=4fs demonstrating no interaction. © (2015) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.

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Journal ArticleDOI

Analytical and numerical demonstration of phase characteristics on two solitons under the influence of third-order dispersion

TL;DR: In this article, the influence of third-order dispersion on phase change properties of two-soliton model is numerically and analytically investigated using perturbation theory approach and split-step Fourier transform, phase characteristics of two solitons pulse are evolved and solved by nonlinear Schrodinger equation.
References
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Book

Nonlinear Fiber Optics

TL;DR: The field of nonlinear fiber optics has advanced enough that a whole book was devoted to it as discussed by the authors, which has been translated into Chinese, Japanese, and Russian languages, attesting to the worldwide activity in the field.
Journal ArticleDOI

Transmission of stationary nonlinear optical pulses in dispersive dielectric fibers. I. Anomalous dispersion

TL;DR: Theoretical calculations supported by numerical simulations show that utilization of the nonlinear dependence of the index of refraction on intensity makes possible the transmission of picosecond optical pulses without distortion in dielectric fiber waveguides with group velocity dispersion.
Journal ArticleDOI

Optical Spatial Solitons and Their Interactions: Universality and Diversity.

TL;DR: The state of knowledge on spatial soliton interactions is reviewed and effects such as fusion, fission, annihilation, and stable orbiting in three dimensions are reviewed.
Journal ArticleDOI

Demonstration of soliton transmission over more than 4000 km in fiber with loss periodically compensated by Raman gain.

TL;DR: By recirculating 55-psec soliton pulses many times around a closed 42-km loop with loss exactly compensated by Raman gain, pulse transmission is successfully demonstrated over distances in excess of 4000 km.
Journal ArticleDOI

Long-distance soliton propagation using lumped amplifiers and dispersion shifted fiber

TL;DR: In this paper, it was shown both analytically and by numerical simulation that solitons can traverse great distances through a chain of lumped amplifiers connecting dispersion shifted fiber spans, and the resultant pulse distortions and dispersive wave radiation tend to be negligible, as long as the length scale of the variations in energy and dispersion are short relative to the soliton period.
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