Horiguchi M, Ohmori Y, Miya T
Appl Opt. 1979 Jul 1;18(13):2223-8. doi: 10.1364/AO.18.002223.
To study the material dispersion effects on graded-index fibers, a method for measuring the material dispersion in optical glass fibers has been developed. Nanosecond pulses in the 0.5-1.7-microm region are generated by a nanosecond optical pulse radiator and grating monochromator. These pulses are injected into a GeO(2)-P(2)0(5)-doped silica graded-index fiber. Relative time delay changes between different wavelengths are used to determine material dispersion, core glass refractive index, material group index, and optimum profile parameter of the graded-index fiber. From the measured data, the optimum profile parameter on the GeO(2)-P(2)O(5)-doped silica graded-index fiber could be estimated to be 1.88 at 1.27 microm of the material dispersion free wavelength region and 1.82 at 1.55 microm of the lowest-loss wavelength region in silica-based optical fiber waveguides.
为了研究材料色散对渐变折射率光纤的影响,已开发出一种测量光学玻璃纤维中材料色散的方法。纳秒光脉冲辐射器和光栅单色仪产生0.5 - 1.7微米区域的纳秒脉冲。这些脉冲被注入到掺GeO₂ - P₂O₅的二氧化硅渐变折射率光纤中。利用不同波长之间的相对时间延迟变化来确定材料色散、纤芯玻璃折射率、材料群折射率以及渐变折射率光纤的最佳剖面参数。根据测量数据,在基于二氧化硅的光纤波导中,掺GeO₂ - P₂O₅的二氧化硅渐变折射率光纤在材料无色散波长区域1.27微米处的最佳剖面参数估计为1.88,在最低损耗波长区域1.55微米处为1.82。