Design of hybrid photonic crystal fiber: Polarization and dispersion properties

•The research article proposed a dispersion compensating fiber (DCF).•This DCF provides high negative dispersion coefficient of −1054.4ps/(nmkm) at 1550nm.•A small length of the DCF is required to compensate the long standard SMF.•In the structure only circular air-hole is used to realize high biref...

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Veröffentlicht in:Photonics and nanostructures 2014-04, Vol.12 (2), p.205-211
Hauptverfasser: Hasan, Md. Imran, Habib, M. Samiul, Habib, M. Selim, Razzak, S.M. Abdur
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Sprache:eng
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Zusammenfassung:•The research article proposed a dispersion compensating fiber (DCF).•This DCF provides high negative dispersion coefficient of −1054.4ps/(nmkm) at 1550nm.•A small length of the DCF is required to compensate the long standard SMF.•In the structure only circular air-hole is used to realize high birefringent. This circular air-hole reduces fabrication complexity.•The proposed PCF can cover E+S+C+L bands for 40Gbps transmission system. A highly birefringent dispersion compensating hybrid photonic crystal fiber is presented. This fiber successfully compensates the chromatic dispersion of standard single mode fiber over E- to L-communication bands. Simulation results reveal that it is possible to obtain a large negative dispersion coefficient of about −1054.4ps/(nmkm) and a relative dispersion slope of 0.0036nm−1 at the 1550nm wavelength. The proposed fiber simultaneously provides a high birefringence of order 3.45×10−2 at the 1550nm. Moreover, it is confirmed that the designed fiber successfully operates as a single mode in the entire band of interest. For practical conditions, the sensitivity of the fibers dispersion properties to a ±2% variation around the optimum values is carefully studied and the nonlinearity of the proposed fiber is also reported and discussed. Such fibers are essential for high speed transmission system as a dispersion compensator, sensing applications, fiber loop mirrors as well as maintaining single polarization, and many nonlinear applications such as four-wave mixing, etc.
ISSN:1569-4410
1569-4429
DOI:10.1016/j.photonics.2014.02.002