Refractive index measurement based on multi-wavelength laser interferometer

Dayong Zhu, Roujing Chen, Wenxin Jia, Huaikang Zhu, Qiyuan Zhang, Sen Han
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Abstract

The traditional methods of measuring refractive index have their unique value and advantages. In order to study the properties of materials and the application of multi-wavelength laser interferometer, a new method of measuring refractive index and dispersion of materials is proposed. The multi-wavelength laser interferometer is designed and built based on the principle of the Fizeau interferometer. It integrates five kinds of laser bands with a wide coverage range through a splitting prism, and can quickly change the measurement wavelength during remeasurement and improve the detection efficiency. In order to further verify the refractive index measurement method, a parallel plate is taken as an example to measure the refractive index. The multi-wavelength laser interferometer combined with variable wavelength standard spherical mirror is used to measure the displacement of ray focus in the case of parallel plate or not, and the refractive index of parallel plate is calculated by geometric optics. The refractive index corresponding to each wavelength is measured, and the refractive index curve of the parallel plate material is calculated by Conrady formula and ACF formula by fitting polynomial method using the measured data, and then the dispersion coefficient of the material can be calculated. The comparison results show that the ACF formula can be used to calculate the refractive index of materials accurately in a larger band range. The experimental results also show that the multi-wavelength laser interferometer has the advantage of measuring multi-wavelength transmission wavefront and can also play a role in more measurement applications.
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基于多波长激光干涉仪的折射率测量
传统的折射率测量方法有其独特的价值和优势。为了研究材料的特性和多波长激光干涉仪的应用,提出了一种测量材料折射率和色散的新方法。基于菲索干涉仪的原理,设计并制造了多波长激光干涉仪。它通过分光棱镜集成了覆盖范围广的五种激光波段,可以在重测时快速改变测量波长,提高检测效率。为了进一步验证折射率测量方法,以平行板为例进行折射率测量。采用多波长激光干涉仪结合变波长标准球面反射镜测量平行板和非平行板情况下的光聚焦位移,并用几何光学方法计算平行板的折射率。测量各波长对应的折射率,利用测量数据通过拟合多项式方法,利用Conrady公式和ACF公式计算平行板材料的折射率曲线,进而计算材料的色散系数。对比结果表明,ACF公式可以在较大的波段范围内准确地计算材料的折射率。实验结果还表明,多波长激光干涉仪具有测量多波长透射波前的优势,可以在更多的测量应用中发挥作用。
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