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Numerical Analysis of Optical Properties Using Octagonal Shaped Photonic Crystal Fiber

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Veröffentlicht/Copyright: 8. Februar 2019
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Abstract

In this paper, we propose a design of octagonal photonic crystal fiber with relevant parameters such as effective mode index, propagation constant, second-order dispersion and field distribution of fundamental mode (LP01). The measured parameters can be applied for generating supercontinuum, and also this model is used especially for generating vortex modes and OAM modes in space division multiplexing (SDM) applications. Highly negative dispersion is achieved at −800 ps/nm.km at wavelength of 1.1 μm, and second-order dispersion profile leads to study about the nonlinearity as well as broadband spectrum of the proposed model.

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Received: 2019-01-14
Accepted: 2019-01-28
Published Online: 2019-02-08
Published in Print: 2022-10-26

© 2019 Walter de Gruyter GmbH, Berlin/Boston

Artikel in diesem Heft

  1. Frontmatter
  2. Amplifiers
  3. EDFA gain flattening optimization with long period fiber gratings in WDM system
  4. Nonlinear Characteristics of Semiconductor Optical Amplifiers for Optical Switching Control Realization of Logic Gates
  5. Reach Enhancement of Designed Free Space Optical Communication System Using Hybrid Optical Amplifier
  6. Devices
  7. 2D-Photonic Crystal based Demultiplexer for WDM Systems – A Review
  8. Design of Optical Reversible Hybrid Adder-Subtractor Device Using Mach-Zehnder Interferometers for WDM Applications
  9. Fibers
  10. Numerical Analysis of Optical Properties Using Octagonal Shaped Photonic Crystal Fiber
  11. Different Graded Refractive Index Fiber Profiles Design for the Control of Losses and Dispersion Effects
  12. Networks
  13. Enhancing confidentiality protection for ZCZ-OCDMA network using line selection and wavelength conversion based on SOA
  14. Fiber Bragg grating-based monitoring system for fiber to the home (FTTH) passive optical network
  15. A Comprehensive Review on Fiber Bragg Grating and Photodetector in Optical Communication Networks
  16. DWDM Channel Spacing Effects on the Signal Quality for DWDM/CWDM FTTx Network
  17. Systems
  18. Comparison between NRZ/RZ Modulation Techniques for Upgrading Long Haul Optical Wireless Communication Systems
  19. Performance Signature of Optical Fiber Communications Dispersion Compensation Techniques for the Control of Dispersion Management
  20. Interaction between Optical Sources and Optical Modulators for High-Speed Optical Communication Networks
  21. Basic Functions of Fiber Bragg Grating Effects on the Optical Fiber Systems Performance Efficiency
  22. Digital Radio Frequency Transport over Optical Fiber for 5G Fronthaul Links
Heruntergeladen am 19.4.2026 von https://www.degruyterbrill.com/document/doi/10.1515/joc-2019-0013/html
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