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Multiple hollow-core anti-resonant fiber as a supermodal fiber interferometer

机译:多空心芯防谐振纤维作为超透镜纤维干涉仪

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Hollow-core anti-resonant fiber technology has made a rapid progress in low loss broadband transmission, enabled by its much reduced light-material overlap. This unique characteristic has driven emerging of new applications spanning from extreme wavelength generation to beam delivery. The successful demonstrations appear to suggest progression of the technology toward device level development and all-fiberized systems. We investigate this opportunity and report an in-fiber interferometer built in a dual hollow-core anti-resonant fiber. By placing multiple air cores in a single fiber, coherently interacting transverse modes are excited, which becomes a basis of an interferometer. We use this hollow core based inherent supermodal interaction to demonstrate highly sensitive in-fiber interferometer. Unique combination of the air guidance and the supermodal interaction offers robust, simple yet highly sensitive interferometer with suppressed temperature cross-talk that has been an enduring problem in fiber strain sensing applications. The in-fiber interferometer is further investigated as a sensing element for pressure measurement based on an interferometric phase change upon external strain. The interferometer features 39.3 nm/MPa of ultrahigh sensitivity with 0.14 KPa/°C of negligible gas pressure temperature crosstalk. The performance, which is much improved from prior fiber sensors, testifies advances of hollow core fiber technology toward a device level.
机译:空心核心防谐振纤维技术在低损耗宽带传输方面取得了快速进展,其通过降低的轻质材料重叠实现。这种独特的特点已经驱动了从极端波长发电到波束输送的新应用的新应用。成功的演示似乎表明了技术级开发和全纤维化系统的技术的进展。我们调查了这个机会,并报告了一种内置于双空心核心抗共振纤维的纤维干涉仪。通过将多个空气芯放置在单个纤维中,激发相干的相互作用的横向模式,这成为干涉仪的基础。我们使用基于空心的核心的固有超导相互作用,以展示高度敏感的纤维干涉仪。空气引导的独特组合和超级阳极交互提供稳健,简单但高度敏感的干涉仪,其抑制温度串扰是纤维应变传感应用中的持久问题。进一步研究了纤维干涉仪,作为基于外部应变时的干涉相变的压力测量的传感元件。干涉仪具有39.3nm / MPa的超高敏感度,具有0.14kPa /°C可忽略的气体压力温度串扰。从先前的光纤传感器中得到多大改善的性能证明了中空核心光纤技术的进步朝向器件水平。

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