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通过设计纳米颗粒特性来调节掺杂纳米颗粒的光纤中的瑞利散射。

Engineering nanoparticle features to tune Rayleigh scattering in nanoparticles-doped optical fibers.

作者信息

Fuertes Victor, Grégoire Nicolas, Labranche Philippe, Gagnon Stéphane, Wang Ruohui, Ledemi Yannick, LaRochelle Sophie, Messaddeq Younès

机构信息

Centre D'optique, Photonique Et Laser, Université Laval, 2375 Rue de la Terrasse, Québec, QC, G1 V 0A6, Canada.

出版信息

Sci Rep. 2021 Apr 27;11(1):9116. doi: 10.1038/s41598-021-88572-2.

Abstract

Rayleigh scattering enhanced nanoparticles-doped optical fibers are highly promising for distributed sensing applications, however, the high optical losses induced by that scattering enhancement restrict considerably their sensing distance to few meters. Fabrication of long-range distributed optical fiber sensors based on this technology remains a major challenge in optical fiber community. In this work, it is reported the fabrication of low-loss Ca-based nanoparticles doped silica fibers with tunable Rayleigh scattering for long-range distributed sensing. This is enabled by tailoring nanoparticle features such as particle distribution size, morphology and density in the core of optical fibers through preform and fiber fabrication process. Consequently, fibers with tunable enhanced backscattering in the range 25.9-44.9 dB, with respect to a SMF-28 fiber, are attained along with the lowest two-way optical losses, 0.1-8.7 dB/m, reported so far for Rayleigh scattering enhanced nanoparticles-doped optical fibers. Therefore, the suitability of Ca-based nanoparticles-doped optical fibers for distributed sensing over longer distances, from 5 m to more than 200 m, becomes possible. This study opens a new path for future works in the field of distributed sensing, since these findings may be applied to other nanoparticles-doped optical fibers, allowing the tailoring of nanoparticle properties, which broadens future potential applications of this technology.

摘要

瑞利散射增强的纳米颗粒掺杂光纤在分布式传感应用中极具前景,然而,由这种散射增强所引起的高光学损耗将其传感距离大幅限制在几米以内。基于该技术制造长距离分布式光纤传感器仍是光纤领域的一项重大挑战。在这项工作中,报道了用于长距离分布式传感的具有可调瑞利散射的低损耗钙基纳米颗粒掺杂石英光纤的制造。这是通过在预制棒和光纤制造过程中调整纳米颗粒的特性(如颗粒分布尺寸、形态和密度)来实现的,这些特性位于光纤纤芯中。因此,相对于SMF - 28光纤,实现了后向散射增强在25.9 - 44.9 dB范围内可调的光纤,同时获得了目前报道的瑞利散射增强纳米颗粒掺杂光纤中最低的双向光学损耗,即0.1 - 8.7 dB/m。因此,钙基纳米颗粒掺杂光纤适用于5米至200多米的更长距离的分布式传感成为可能。这项研究为分布式传感领域的未来工作开辟了一条新途径,因为这些发现可能应用于其他纳米颗粒掺杂光纤,从而能够定制纳米颗粒特性,这拓宽了该技术未来的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/011f/8079377/612f50466d1d/41598_2021_88572_Fig1_HTML.jpg

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