Structural Analysis of Nano Core PCF With Fused Cladding for Supercontinuum Generation in 6G Networks

Author:

Anbazhagan Rajesh1,Chandru S.2,Chinthaginjala Ravikumar3ORCID,Bagadi Kalapraveen3ORCID,Alibakhshikenari Mohammad4ORCID,Virdee Bal S.5,Ali Syed Mansoor6,Dayoub Iyad78ORCID,Livreri Patrizia9,Aïssa Sonia10

Affiliation:

1. School of Electrical and Electronics Engineering SASTRA Deemed University Thanjavur India

2. Department of ECE Global Institute of Engineering and Technology Vellore India

3. School of Electronics Engineering Vellore Institute of Technology Vellore India

4. Department of Signal Theory and Communications Universidad Carlos III de Madrid Leganés Spain

5. Center for Communications Technology School of Computing and Digital Media London Metropolitan University London UK

6. Department of Physics and Astronomy College of Science King Saud University Riyadh Saudi Arabia

7. Université Polytechnique Hauts‐de‐France Institut d'Électronique de Microélectronique et de Nanotechnologie (IEMN) CNRS UMR 8520 ISEN Centrale Lille University of Lille Valenciennes France

8. INSA Hauts‐de‐France Valenciennes France

9. Department of Engineering University of Palermo Palermo Italy

10. Institut National de la Recherche Scientifique (INRS) Université du Quebec Montreal QC Canada

Abstract

AbstractThe Sixth Generation (6G) networks have identified the use of frequency range between 95 GHz and 3 THz with a targeted data rate of 1 Terabytes/second at the access network for holographic video applications. As is demands broadening of spectrum at the core network, this paper proposes a Supercontinuum Generation (SCG) through photonic crystal fiber (PCF) as it provides excellent broadening of the optical spectrum. Discussed in the paper is supercontinuum generation at high pumping power as per the standards specified by the International Telecommunications Union. The proposed PCF is designed with silicon nanocrystal core and the cladding microstructures is arranged in a fusion approach to effectively optimize the optical parameters such as dispersion, nonlinearity, birefringence, group‐velocity dispersion, and confinement loss. The fused cladding comprises of a flower‐cladding assembly in which air‐holes arrangement is inspired from petals in a pleated structure. Such arrangement is shown here to provide high nonlinearity and negative dispersion for high power supercontinuum generation. The novel nanocore assembly with improved structural constraints delivers a non‐linearity of 6.37 × 106 W−1 km−1 and a negative dispersion of −142.1 (ps/nm‐km) at 1,550 nm. Moreover, a supercontinuum spectrum is generated using different pulse widths ranging from 350 to 650 ps with 25 kW pump power for PCF lengths of 10 and 15 mm.

Publisher

American Geophysical Union (AGU)

Subject

Electrical and Electronic Engineering,General Earth and Planetary Sciences,Condensed Matter Physics

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