Characterization of a new polymer optical fiber with enhanced sensing capabilities using a Bragg grating

We present results for the mechanical characterization of a bisphenol-A acrylate-based polymer optical fiber (POF) manufactured using a novel light polymerization spinning (LPS) process. The particular manufacturing process allows the development of POFs having unique mechanical characteristics, whi...

Full description

Saved in:
Bibliographic Details
Published inOptics letters Vol. 43; no. 19; p. 4799
Main Authors Leal-Junior, Arnaldo, Theodosiou, Antreas, Frizera-Neto, Anselmo, Pontes, Maria José, Shafir, Ehud, Palchik, Oleg, Tal, Nadav, Zilberman, Shlomi, Berkovic, Garry, Antunes, Paulo, André, Paulo, Kalli, Kyriacos, Marques, Carlos
Format Journal Article
LanguageEnglish
Published United States 01.10.2018
Online AccessGet more information

Cover

Loading…
More Information
Summary:We present results for the mechanical characterization of a bisphenol-A acrylate-based polymer optical fiber (POF) manufactured using a novel light polymerization spinning (LPS) process. The particular manufacturing process allows the development of POFs having unique mechanical characteristics, which result from an exceptionally low Young's modulus. The lower Young's modulus enables optical sensors for measuring stress or pressure with improved sensitivity and potentially a higher tunable mechanical range than conventional POFs. Moreover, properties such as the storage modulus variations with respect to the temperature and humidity were studied. Fiber Bragg gratings (FBGs), were inscribed in the POF using the plane-by-plane femtosecond laser, direct-write method for selective FBG mode excitation, and were characterized for changes to temperature, pressure, and relative humidity. The response of FBGs in this LPS-POF for all the three aforementioned measurands was several times higher than that measured for conventional POFs.
ISSN:1539-4794
DOI:10.1364/OL.43.004799