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Extreme Radiation Sensitivity of Ultra-Low Loss Pure-Silica-Core Optical Fibers at Low Dose Levels and Infrared Wavelengths

We report here the response of a commercial ultra-low loss (ULL) single-mode (SM) pure silica core (PSC) fiber, the Vascade EX1000 fiber from Corning, associated with 0.16 dB/km losses at 1.55 µm to 40 keV X-rays at room temperature. Today, among all fiber types, the PSC or F-doped ones have been de...

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Autores principales: Morana, Adriana, Campanella, Cosimo, Vidalot, Jeoffray, De Michele, Vincenzo, Marin, Emmanuel, Reghioua, Imène, Boukenter, Aziz, Ouerdane, Youcef, Paillet, Philippe, Girard, Sylvain
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766792/
https://www.ncbi.nlm.nih.gov/pubmed/33348894
http://dx.doi.org/10.3390/s20247254
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author Morana, Adriana
Campanella, Cosimo
Vidalot, Jeoffray
De Michele, Vincenzo
Marin, Emmanuel
Reghioua, Imène
Boukenter, Aziz
Ouerdane, Youcef
Paillet, Philippe
Girard, Sylvain
author_facet Morana, Adriana
Campanella, Cosimo
Vidalot, Jeoffray
De Michele, Vincenzo
Marin, Emmanuel
Reghioua, Imène
Boukenter, Aziz
Ouerdane, Youcef
Paillet, Philippe
Girard, Sylvain
author_sort Morana, Adriana
collection PubMed
description We report here the response of a commercial ultra-low loss (ULL) single-mode (SM) pure silica core (PSC) fiber, the Vascade EX1000 fiber from Corning, associated with 0.16 dB/km losses at 1.55 µm to 40 keV X-rays at room temperature. Today, among all fiber types, the PSC or F-doped ones have been demonstrated to be the most tolerant to the radiation induced attenuation (RIA) phenomenon and are usually used to design radiation-hardened data links or fiber-based point or distributed sensors. The here investigated ULL-PSC showed, instead, surprisingly high RIA levels of ~3000 dB/km at 1310 nm and ~2000 dB/km at 1550 nm at a limited dose of 2 kGy(SiO(2)), exceeding the RIA measured in the P-doped SM fibers used for dosimetry for doses of ~500 Gy. Moreover, its RIA increased as a function of the dose with a saturation tendency at larger doses and quickly recovered after irradiation. Our study on the silica structure suggests that the very specific manufacturing process of the ULL-PSC fibers applied to reduce their intrinsic attenuation makes them highly vulnerable to radiations even at low doses. From the application point of view, this fiber cannot be used for data transfer or sensing in harsh environments, except as a very efficient radiation detector or beam monitor.
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spelling pubmed-77667922020-12-28 Extreme Radiation Sensitivity of Ultra-Low Loss Pure-Silica-Core Optical Fibers at Low Dose Levels and Infrared Wavelengths Morana, Adriana Campanella, Cosimo Vidalot, Jeoffray De Michele, Vincenzo Marin, Emmanuel Reghioua, Imène Boukenter, Aziz Ouerdane, Youcef Paillet, Philippe Girard, Sylvain Sensors (Basel) Article We report here the response of a commercial ultra-low loss (ULL) single-mode (SM) pure silica core (PSC) fiber, the Vascade EX1000 fiber from Corning, associated with 0.16 dB/km losses at 1.55 µm to 40 keV X-rays at room temperature. Today, among all fiber types, the PSC or F-doped ones have been demonstrated to be the most tolerant to the radiation induced attenuation (RIA) phenomenon and are usually used to design radiation-hardened data links or fiber-based point or distributed sensors. The here investigated ULL-PSC showed, instead, surprisingly high RIA levels of ~3000 dB/km at 1310 nm and ~2000 dB/km at 1550 nm at a limited dose of 2 kGy(SiO(2)), exceeding the RIA measured in the P-doped SM fibers used for dosimetry for doses of ~500 Gy. Moreover, its RIA increased as a function of the dose with a saturation tendency at larger doses and quickly recovered after irradiation. Our study on the silica structure suggests that the very specific manufacturing process of the ULL-PSC fibers applied to reduce their intrinsic attenuation makes them highly vulnerable to radiations even at low doses. From the application point of view, this fiber cannot be used for data transfer or sensing in harsh environments, except as a very efficient radiation detector or beam monitor. MDPI 2020-12-17 /pmc/articles/PMC7766792/ /pubmed/33348894 http://dx.doi.org/10.3390/s20247254 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Morana, Adriana
Campanella, Cosimo
Vidalot, Jeoffray
De Michele, Vincenzo
Marin, Emmanuel
Reghioua, Imène
Boukenter, Aziz
Ouerdane, Youcef
Paillet, Philippe
Girard, Sylvain
Extreme Radiation Sensitivity of Ultra-Low Loss Pure-Silica-Core Optical Fibers at Low Dose Levels and Infrared Wavelengths
title Extreme Radiation Sensitivity of Ultra-Low Loss Pure-Silica-Core Optical Fibers at Low Dose Levels and Infrared Wavelengths
title_full Extreme Radiation Sensitivity of Ultra-Low Loss Pure-Silica-Core Optical Fibers at Low Dose Levels and Infrared Wavelengths
title_fullStr Extreme Radiation Sensitivity of Ultra-Low Loss Pure-Silica-Core Optical Fibers at Low Dose Levels and Infrared Wavelengths
title_full_unstemmed Extreme Radiation Sensitivity of Ultra-Low Loss Pure-Silica-Core Optical Fibers at Low Dose Levels and Infrared Wavelengths
title_short Extreme Radiation Sensitivity of Ultra-Low Loss Pure-Silica-Core Optical Fibers at Low Dose Levels and Infrared Wavelengths
title_sort extreme radiation sensitivity of ultra-low loss pure-silica-core optical fibers at low dose levels and infrared wavelengths
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766792/
https://www.ncbi.nlm.nih.gov/pubmed/33348894
http://dx.doi.org/10.3390/s20247254
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