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128571

Analysis of Photonic Crystal Fibers Using Full Vectorial Finite Difference Method.

Article

Last updated: 22 Jan 2023

Subjects

-

Tags

Mathematics and Engineering Physics

Abstract

The full-vectorial finite difference method (FV-FDM) is applied to perform modal solution to 
photonic crystal fibers (PCFs). The effects of geometrical parameters of the circular and elliptical 
holes on the effective index, the dispersion and the effective mode area of the fundamental mode 
have been studied. PCF structure showing dispersion of 0+1.288 ps/nm.km over the wavelength range from 1.3 um to 1.8 um has been reported. The applicability of using PCF as a pressure sensor 
has been discussed

DOI

10.21608/bfemu.2020.128571

Keywords

Photonic crystal fiber: Finite difference method: Full, vectorial modes

Authors

First Name

M.

Last Name

Farhat

MiddleName

-

Affiliation

Department of Mathematical and Physical Sciences, Faculty of Engineering, University of Mansoura., Mansoura., Egypt.

Email

engmfarhat@mans.edu.eg

City

Mansoura

Orcid

-

First Name

Marwa Esmail

Last Name

Obaiya

MiddleName

Mahmoud

Affiliation

Department of Electronics and Communications, Faculty of Engineering. University of Mansoura., Mansoura., Egypt

Email

-

City

Mansoura

Orcid

-

First Name

Abed

Last Name

M. Nasr

MiddleName

-

Affiliation

Department of Mathematical and Physical Sciences, Faculty of Engineering, University of Mansoura., Mansoura., Egypt.

Email

fldp7@mans.edu.eg

City

Mansoura

Orcid

-

Volume

32

Article Issue

2

Related Issue

19076

Issue Date

2007-06-01

Receive Date

2007-03-11

Publish Date

2020-06-01

Page Start

1

Page End

17

Print ISSN

1110-0923

Online ISSN

2735-4202

Link

https://bfemu.journals.ekb.eg/article_128571.html

Detail API

https://bfemu.journals.ekb.eg/service?article_code=128571

Order

20

Type

Research Studies

Type Code

1,205

Publication Type

Journal

Publication Title

MEJ. Mansoura Engineering Journal

Publication Link

https://bfemu.journals.ekb.eg/

MainTitle

-

Details

Type

Article

Created At

22 Jan 2023