Academic Journal

Design of Silica Multimode Optical Fibers with Extremely Enlarged Core Diameter for Laser-Based Multi-Gigabit Short-Range Optical Networks

Bibliographic Details
Title: Design of Silica Multimode Optical Fibers with Extremely Enlarged Core Diameter for Laser-Based Multi-Gigabit Short-Range Optical Networks
Authors: Anton V. Bourdine, Vladimir A. Burdin, Vijay Janyani, Ashish Kumar Ghunawat, Ghanshyam Singh, Alexander E. Zhukov
Superior Title: Photonics, Vol 5, Iss 4, p 37 (2018)
Publisher Information: MDPI AG, 2018.
Publication Year: 2018
Collection: LCC:Applied optics. Photonics
Subject Terms: laser-based multi-gigabit data transmission, large core multimode optical fiber, few-mode regime, higher-order modes, differential mode delay, mode coupling, on-board cable systems, industrial networks, short-range optical networks, Applied optics. Photonics, TA1501-1820
Description: This work presents an alternative fast and simple method for the design of a refractive index profile of silica multimode optical fibers (MMFs) with extremely enlarged core diameters of up to 100 µm for laser-based multi-gigabit short-range optical networks. We demonstrate some results of 100 µm core MMF graded index profile optimization performed by a proposed solution, which provides a selected mode staff differential mode delay (DMD) reduction over the “O”-band under particular launching conditions. Earlier on, a developed alternative model for a piecewise regular multimode fiber optic link operating in a few-mode regime for the computation of laser-excited optical pulse dynamics during its propagation over an irregular silica graded-index MMF with an extremely large core diameter, is utilized to estimate the potentiality of fiber optic links with the described MMFs. Here, we also present the comparison results of the simulation of 10GBase-LX optical signal transmission over 100 µm core MMFs with conventional and optimized graded-index refractive index profiles.
Document Type: article
File Description: electronic resource
Language: English
ISSN: 2304-6732
Relation: http://www.mdpi.com/2304-6732/5/4/37; https://doaj.org/toc/2304-6732
DOI: 10.3390/photonics5040037
Access URL: https://doaj.org/article/ca6404fd836c4db8a5f68b3d7561b213
Accession Number: edsdoj.6404fd836c4db8a5f68b3d7561b213
Database: Directory of Open Access Journals
Description
Description not available.