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Temperature response of an all-solid photonic bandgap fiber for sensing applications

机译:用于传感应用的全固态光子带隙光纤的温度响应

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摘要

The spectral shift due to temperature in the photonic bandgap (PBG) of an all-solid PBG fiber is investigated, aiming at discrete and distributed temperature sensing. A temperature rise induces a red shift in the bandgap spectra, which can be easily and precisely monitored by measuring the fiber transmission near one of the band edges. Two different situations that are potentially compatible with distributed and quasi-distributed sensing were investigated: heating a 2 m section of a longer (~10 m) fiber, and heating the whole extension of a fiber that is tens of centimeters in length and was spliced to conventional fibers on both sides. The latter setup yielded bandgap spectral shifts up to ~35 pm/℃. Aiming at discrete sensing, a short (~50 mm) fiber section was subjected to a tight bend so as to exhibit increased temperature sensitivity. Choosing the position of the bend allows for reconfiguration, on demand, of the sensor. A semi-analytical method to identify the spectral position of bandgaps was used to model the fiber transmission, as well as the bandgap shift with temperature, with consistent results.
机译:研究了全固态PBG光纤的光子带隙(PBG)中由于温度引起的光谱偏移,旨在实现离散和分布式温度传感。温度升高会引起带隙谱的红移,通过测量一个带边缘附近的光纤传输率,可以轻松而精确地监视该带隙谱。研究了可能与分布式和准分布式传感兼容的两种不同情况:加热较长(〜1​​0 m)光纤的2 m截面,以及加热长度为数十厘米且已拼接的光纤的整个延伸部分两侧的常规纤维。后一种设置产生的带隙谱位移高达〜35 pm /℃。针对离散感测,对短(〜50 mm)的光纤部分进行了严格的弯曲,以提高温度敏感性。选择折弯位置可以根据需要重新配置传感器。使用半分析方法确定带隙的光谱位置,可以对光纤传输以及带隙随温度的变化建模,从而获得一致的结果。

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