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Design of photonic crystal fiber long-period grating refractive index sensor

机译:光子晶体光纤长周期光栅折射率传感器的设计

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Numerical optimization of photonic crystal fiber (PCF) structures for refractive index sensors based on long period gratings inscribed in PCFs has been performed. The optimization procedure employs the Nelder-Mead downhill simplex algorithm. This direct-search method attempts to minimize a scalar-valued nonlinear function of N real variables (called the objective function) using only function values, without any derivative information. An inverse design approach utilizes the objective function constructed using desired sensing characteristics. For the modal analysis of the PCF structure a fully-vectorial solver based on the finite element method is called by the objective function. The dispersion optimization of PCFs is aimed at achieving a high sensitivity of measurement of refractive index of analytes infiltrated into the air holes for the refractive index and probe wavelength ranges of interest. We have restricted our work to the index-guiding solid-core PCF structures with hexagonally arrayed air holes.
机译:已基于PCF中刻有的长周期光栅对用于折射率传感器的光子晶体光纤(PCF)结构进行了数值优化。优化过程采用Nelder-Mead下坡单纯形算法。这种直接搜索方法试图仅使用函数值而不使用任何导数信息来最小化N个实变量的标量值非线性函数(称为目标函数)。逆设计方法利用了使用所需感测特性构造的目标函数。为了对PCF结构进行模态分析,目标函数调用了基于有限元方法的全矢量求解器。 PCF的色散优化旨在针对感兴趣的折射率和探头波长范围实现高灵敏度的测量,分析物渗透到气孔中的折射率。我们将工作限制在具有六边形排列的气孔的指引折射率的实芯PCF结构上。

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