DTU Fotonik, Department of Photonics Engineering, Technical University of Denmark, Frederiksborgvej 399, 4000 Roskilde, Denmark.
DTU Fotonik, Department of Photonics Engineering, Technical University of Denmark, Ørsteds Plads, 2800 Kgs. Lyngby, Denmark.
Sensors (Basel). 2019 Jan 12;19(2):285. doi: 10.3390/s19020285.
We report on a simple chemical etching method that enables nonlinear tapering of Polymer Optical Fiber (POF) tips to manufacture Compound Parabolic Concentrator (CPC) fiber tips. We show that, counter-intuitively, nonlinear tapering can be achieved by first etching the core and not the cladding. The etching mechanism is modelled and etched tips are characterized both geometrically and optically in a fluorescence glucose sensor chemistry. A Zemax model of the CPC tipped sensor predicts an optimal improvement in light capturing efficiency of a factor of 3.96 compared to the conventional sensor with a plane-cut fiber tip. A batch of eight CPC fiber tips has been manufactured by the chemical etching method. The batch average showed an increase of a factor of 3.16, which is only 20% less than the predicted value. The method is reproducible and can be up-scaled for mass production.
我们报告了一种简单的化学刻蚀方法,该方法可实现聚合物光纤(POF)尖端的非线性渐缩,从而制造复合抛物面聚光器(CPC)光纤尖端。我们发现,具有反直觉的是,通过首先刻蚀纤芯而不是包层,可以实现非线性渐缩。对刻蚀机制进行了建模,并在荧光葡萄糖传感器化学中对几何形状和光学特性进行了刻蚀尖端的特性分析。CPC 尖端传感器的 Zemax 模型预测,与具有平面切割光纤尖端的传统传感器相比,光捕获效率的最佳改进提高了 3.96 倍。通过化学刻蚀方法制造了一批 8 个 CPC 光纤尖端。该批产品的平均提高了 3.16 倍,仅比预测值低 20%。该方法具有可重复性,并且可以进行规模化批量生产。