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Cleaving of TOPAS and PMMA microstructured polymer optical fibers: Core-shift and statistical quality optimization

机译:切割TOpas和pmma微结构聚合物光纤:核心移位和统计质量优化

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摘要

We fabricated an electronically controlled polymer optical fiber cleaver, which uses a razor-blade guillotine and provides independent control of fiber temperature, blade temperature, and cleaving speed. To determine the optimum cleaving conditions of microstructured polymer optical fibers (mPOFs) with hexagonal hole structures we developed a program for cleaving quality optimization, which reads in a microscope image of the fiber end-facet and determines the core-shift and the statistics of the hole diameter, hole-to-hole pitch, hole ellipticity, and direction of major ellipse axis. For 125μm in diameter mPOFs of the standard polymer PMMA we found the optimum temperatures to be 77.5°C for both blade and fiber. For 280μm in diameter mPOFs of the humidity insensitive polymer TOPAS® (grade 8007) the optimum temperature was 40° for both blade and fiber. A 100μm thick flat-edge blade was found to minimize the core-shift by the cleaving to only 298nm or 5% of the pitch for the PMMA mPOF at the optimal temperature.
机译:我们制造了一种电子控制的聚合物光纤切割刀,它使用剃须刀断头台并提供对纤维温度,刀片温度和切割速度的独立控制。为了确定具有六角孔结构的微结构聚合物光纤(mPOF)的最佳解理条件,我们开发了一种解理质量优化程序,该程序可读取纤维端面的显微镜图像,并确定纤芯位移和纤维的统计数据。孔径,孔间距,孔椭圆率和长椭圆轴方向。对于标准聚合物PMMA的直径为125μm的mPOF,我们发现刀片和光纤的最佳温度均为77.5°C。对于湿度不敏感的聚合物TOPAS®(8007级)的直径mPOFs,刀片和纤维的最佳温度均为40°。发现在最佳温度下,通过切至PMMA mPOF的仅298nm或节距的5%,可以发现100μm厚的平刃刀片可将芯偏移最小化。

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