Generation of a Train of Ultrashort Pulses Near-Infrared Regime in a Tapered Photonic Crystal Fiber Using Raised-Cosine Pulses

We consider an optical pulse propagating in a tapered photonic crystal fiber (PCF) wherein dispersion as well as nonlinearity varies along the propagation direction. The generalized nonlinear Schrödinger equation aptly models the pulse propagation in such a PCF. The design of the tapered...

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Main Authors: Samuel Olupitan, K. Senthilnathan, P. Ramesh Babu, Sumeet S. Aphale, K. Nakkeeran
Format: Article
Language:English
Published: IEEE 2012-01-01
Series:IEEE Photonics Journal
Subjects:
Online Access:https://ieeexplore.ieee.org/document/6243164/
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spelling doaj-9da4fe035e0149e99596b1b8e2fdd7102021-03-29T17:08:32ZengIEEEIEEE Photonics Journal1943-06552012-01-01451420143710.1109/JPHOT.2012.22086226243164Generation of a Train of Ultrashort Pulses Near-Infrared Regime in a Tapered Photonic Crystal Fiber Using Raised-Cosine PulsesSamuel Olupitan0K. Senthilnathan1P. Ramesh Babu2Sumeet S. Aphale3K. Nakkeeran4<formula formulatype="inline"><tex Notation="TeX">$^{1}$</tex></formula>School of Engineering, Fraser Noble Building, King's College, University of Aberdeen, Aberdeen, U.K.<formula formulatype="inline"><tex Notation="TeX">$^{2}$</tex></formula> Photonics Division, School of Advanced Sciences, VIT University, Vellore, India<formula formulatype="inline"><tex Notation="TeX">$^{2}$</tex></formula>Photonics Division, School of Advanced Sciences, VIT University, Vellore, India<formula formulatype="inline"><tex Notation="TeX">$^{1}$</tex></formula>School of Engineering, Fraser Noble Building, King's college, University of Aberdeen, Aberdeen, U.K.<formula formulatype="inline"><tex Notation="TeX">$^{1}$</tex></formula>School of Engineering, Fraser Noble Building, King's college, University of Aberdeen, Aberdeen, U.K.We consider an optical pulse propagating in a tapered photonic crystal fiber (PCF) wherein dispersion as well as nonlinearity varies along the propagation direction. The generalized nonlinear Schro&#x0308;dinger equation aptly models the pulse propagation in such a PCF. The design of the tapered PCF is based on the analytical results, which demand that the dispersion decrease exponentially and the nonlinearity increase exponentially. In this paper, we adopt the generalized projection operator method for deriving the pulse-parameter equations of the Lagrangian variation method and the collective variable method. Besides, we consider another pulse profile called raised cosine (RC), which is aimed at replacing the conventional hyperbolic secant pulse. From the detailed results, we infer that the initial RC pulse evolves into a hyperbolic secant pulse. Further, in order to minimize the input power requirement, we employ the idea of replacing the solid core in the PCF with chloroform. In addition to the single pulse compression, we also investigate the possibility of multisoliton pulse compression. Here, we consider eight chirped hyperbolic secant pulses as input and generate a train of ultrashort pulses at 850 nm based on the chirped multisoliton pulse compression. In a similar way, we extend this pulse compression with eight RC pulses.https://ieeexplore.ieee.org/document/6243164/Photonic bandgapphotonic crystal fiberpulse compressionsolitonultrashort pulse
collection DOAJ
language English
format Article
sources DOAJ
author Samuel Olupitan
K. Senthilnathan
P. Ramesh Babu
Sumeet S. Aphale
K. Nakkeeran
spellingShingle Samuel Olupitan
K. Senthilnathan
P. Ramesh Babu
Sumeet S. Aphale
K. Nakkeeran
Generation of a Train of Ultrashort Pulses Near-Infrared Regime in a Tapered Photonic Crystal Fiber Using Raised-Cosine Pulses
IEEE Photonics Journal
Photonic bandgap
photonic crystal fiber
pulse compression
soliton
ultrashort pulse
author_facet Samuel Olupitan
K. Senthilnathan
P. Ramesh Babu
Sumeet S. Aphale
K. Nakkeeran
author_sort Samuel Olupitan
title Generation of a Train of Ultrashort Pulses Near-Infrared Regime in a Tapered Photonic Crystal Fiber Using Raised-Cosine Pulses
title_short Generation of a Train of Ultrashort Pulses Near-Infrared Regime in a Tapered Photonic Crystal Fiber Using Raised-Cosine Pulses
title_full Generation of a Train of Ultrashort Pulses Near-Infrared Regime in a Tapered Photonic Crystal Fiber Using Raised-Cosine Pulses
title_fullStr Generation of a Train of Ultrashort Pulses Near-Infrared Regime in a Tapered Photonic Crystal Fiber Using Raised-Cosine Pulses
title_full_unstemmed Generation of a Train of Ultrashort Pulses Near-Infrared Regime in a Tapered Photonic Crystal Fiber Using Raised-Cosine Pulses
title_sort generation of a train of ultrashort pulses near-infrared regime in a tapered photonic crystal fiber using raised-cosine pulses
publisher IEEE
series IEEE Photonics Journal
issn 1943-0655
publishDate 2012-01-01
description We consider an optical pulse propagating in a tapered photonic crystal fiber (PCF) wherein dispersion as well as nonlinearity varies along the propagation direction. The generalized nonlinear Schro&#x0308;dinger equation aptly models the pulse propagation in such a PCF. The design of the tapered PCF is based on the analytical results, which demand that the dispersion decrease exponentially and the nonlinearity increase exponentially. In this paper, we adopt the generalized projection operator method for deriving the pulse-parameter equations of the Lagrangian variation method and the collective variable method. Besides, we consider another pulse profile called raised cosine (RC), which is aimed at replacing the conventional hyperbolic secant pulse. From the detailed results, we infer that the initial RC pulse evolves into a hyperbolic secant pulse. Further, in order to minimize the input power requirement, we employ the idea of replacing the solid core in the PCF with chloroform. In addition to the single pulse compression, we also investigate the possibility of multisoliton pulse compression. Here, we consider eight chirped hyperbolic secant pulses as input and generate a train of ultrashort pulses at 850 nm based on the chirped multisoliton pulse compression. In a similar way, we extend this pulse compression with eight RC pulses.
topic Photonic bandgap
photonic crystal fiber
pulse compression
soliton
ultrashort pulse
url https://ieeexplore.ieee.org/document/6243164/
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