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Thermally controlled mid-IR band-gap engineering in all-glass chalcogenide microstructured fibers: a numerical study

机译:全玻璃硫属元素化物微结构纤维中的热控制中部IR带隙工程:数值研究

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摘要

Presence of photonic band-gap (PBG) in an all-glass low refractive index (RI) contrast chalcogenide (Ch) microstructured optical fibers (MOFs) is investigated numerically. The effect of external temperature on the position of band-gap is explored to realize potential fiber-based wavelength filters/sensors at functional mid-IR spectral range. The cross-sectional geometry of the MOF is formed by considering a Ch glass to form the overall background cross-section as well as the central fiber core. The core region is surrounded by periodically arranged (hexagonal pattern) smaller holes, which are assumed to be filled up with another Ch glass. Thermally compatible and fabrication suitable, two Ch glasses are chosen, one (higher RI) as background material and the other (of lower RI) to fill up the holes. Two sets of such pairs of thermally compatible Ch-glasses are considered as fiber structural materials with relative RI contrast of similar to 12% and similar to 24%. For both such low RI contrast hexagonal structures, PBG appears only for suitable finite values of longitudinal wave vector. The structures are suitable to realize band-gap at mid-IR wavelengths and specifically optimized for operation around the similar to 2 mu m region. Then the temperature sensitivity of band-gaps is investigated to design fiber-based mid-IR wavelength filters/sensors.
机译:在数值上研究了全玻璃低折射率(RI)对比硫钙(RI)对比硫族化物(CH)微结构化光纤(MOF)中的光子带间隙(PBG)。探讨了外部温度对带间隙位置的影响,以实现功能性中红外IR光谱范围的潜在光纤的波长滤波器/传感器。通过考虑CH玻璃以形成整个背景横截面以及中央纤维芯来形成MOF的横截面几何形状。芯区域通过周期性地布置(六边形图案)较小的孔包围,这假设与另一个CH玻璃填充。热兼容和制造合适,选择两个CH玻璃,一个(较高的RI)作为背景材料,另一个(下RI),以填充孔。两组这样的热兼容的CH眼镜被认为是纤维结构材料,其相对RI对比度类似于12%并且类似于24%。对于这种低RI对比度六方结构,PBG仅出现用于纵向波载体的合适有限值。该结构适合于在MID-IR波长下实现带间隙,并且具体地优化用于类似于类似于2μm的图像。然后研究了带间隙的温度敏感性,以设计基于光纤的中红外波长滤波器/传感器。

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