Comprehensive investigation on chalcogenide thin film coated multimode optical fiber: Visible evanescent-wave absorption refractometer

Heidarnia, Z., Khoshsima, H., Parvizi, R. and Heidari, H. (2022) Comprehensive investigation on chalcogenide thin film coated multimode optical fiber: Visible evanescent-wave absorption refractometer. Journal of Non-Crystalline Solids, 586, 121567. (doi: 10.1016/j.jnoncrysol.2022.121567)

[img] Text
268102.pdf - Accepted Version
Available under License Creative Commons Attribution Non-commercial No Derivatives.

2MB

Abstract

In this work, a different insight into the absorption characteristics of the chalcogenide thin film over the visible-wavelength range is studied in detailed. A comparative study of the lossy mode resonance (LMR) dips stem from the evanescent-wave absorption is theoretically and experimentally investigated towards refractive index measurement in aqueous environment. The absorbing layer of thermally evaporated arsenic trisulfide chalcogenide (As2S3) thin film coated onto the low OH etched optical fiber (ChOF) is prepared. X-ray diffraction (XRD), scanning electron microscopy (SEM), and Raman spectroscopy, were used to characterize the chemical species, the crystal structure, and the morphology of the degradation layer confirming the As2S3, thin-film deposition on the curved optical fiber surface. The LMR dips condition hinging on the adoption of the chalcogenide layer was comprehensively explored by referring to the absorption spectra as a function of the wavelength and its thicknesses. Taking the advantage of the chalcogenide absorptive features within the visible spectral range, the results verified that coating even a thin subwavelength thickness of As2S3 chalcogenide on a bare has the ability to provide liquid refractometer with a versatile absorbing features. Our results point to a new path for the development of LMR-based chemical sensors, environmental sensors, or to be combined to the integrated micro-photonics device biosensors.

Item Type:Articles
Status:Published
Refereed:Yes
Glasgow Author(s) Enlighten ID:Heidari, Professor Hadi
Creator Roles:
Heidari, H.Conceptualization, Visualization, Writing – original draft, Writing – review and editing
Authors: Heidarnia, Z., Khoshsima, H., Parvizi, R., and Heidari, H.
College/School:College of Science and Engineering > School of Engineering > Electronics and Nanoscale Engineering
Journal Name:Journal of Non-Crystalline Solids
Publisher:Elsevier
ISSN:0022-3093
ISSN (Online):1873-4812
Published Online:28 March 2022
Copyright Holders:Copyright © 2022 Elsevier B.V.
First Published:First published in Journal of Non-Crystalline Solids 586:121567
Publisher Policy:Reproduced in accordance with the publisher copyright policy

University Staff: Request a correction | Enlighten Editors: Update this record