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首页> 外文期刊>Applied optics >Modeling the tapering effects of fabricated photonic crystal fibers and tailoring birefringence, dispersion, and supercontinuum generation properties
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Modeling the tapering effects of fabricated photonic crystal fibers and tailoring birefringence, dispersion, and supercontinuum generation properties

机译:模拟已制造的光子晶体光纤的锥形效应,并调整双折射,色散和超连续谱的生成特性

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The effects of tapering fabricated air-silica photonic crystal fibers (PCFs) by tailoring the key modal and nonlinear properties of PCFs have been studied by analyzing the tapered structure using a finite difference mode calculation algorithm. The process of tapering is simulated through repeatedly redefining the geometry of the fiber cross section in a progressively tapered dimension preserving the shape. We tested the performance of the analysis by evaluating the modal characteristics, namely, the mode-effective area, birefringence, dispersion, nonlinearity, and supercontinuum properties of some well-known PCF examples under successive tapered conditions. Tapering, as an additional parameter, is seen to improve birefringence of a typical high-birefringence PCF by 1 order of magnitude. The analysis also estimates the extent of tapering that is required to achieve a target amount of evanescent field that has potential applications in an evanescent field sensor. Our investigation with tapered PCF structures includes tailoring dispersion properties and increasing nonlinearity, which leads to broader and lower threshold supercontinuum generation. The analysis should, therefore, be useful as a ready technique for taper analysis of any arbitrary structure PCF and also in PCF-preform (stacking structure) analysis, which can provide preestimates of properties in a targeted dimension of the final PCF before drawing.
机译:通过使用有限差分模式计算算法分析锥形结构,研究了通过调整PCF的关键模态和非线性特性而使制成的空气二氧化硅光子晶体光纤(PCF)逐渐变细的效果。通过以保持形状的逐渐变细的尺寸反复重新定义纤维横截面的几何形状,可以模拟逐渐变细的过程。我们通过评估模态特征(即模态有效面积,双折射,色散,非线性和超连续谱性质,在连续的渐缩条件下)来测试分析的性能。锥形化作为附加参数,可以将典型的高双折射PCF的双折射提高1个数量级。该分析还估计了实现渐逝场的目标量所需的渐缩程度,渐逝场在渐逝场传感器中具有潜在的应用。我们对锥形PCF结构的研究包括调整色散特性和增加非线性,从而导致产生更宽和更低的阈值超连续谱。因此,该分析应可用作对任意结构PCF进行锥度分析的现成技术,并且还应用于PCF预成型件(堆叠结构)分析中,从而可以在拉伸前对最终PCF的目标尺寸进行性能估算。

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