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Absolute distance (thickness) metrology using wavelength scanning interferometry.

机译:使用波长扫描干涉仪的绝对距离(厚度)度量衡。

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摘要

Wavelength scanning interferometry offers a new dimension in precision metrology by measuring the cavity length (thickness), the cavity length variation over the cavity area (flatness), and the optical homogeneity within a transparent cavity; without any mechanical movement by implementing a tunable laser. This property is useful when the physical movement of an optic is not feasible using traditional phase shifting methods employing piezoelectric transducers and for characterizing solid optical cavities which require movement of one surface relative to the other. The cavity length that can be measured is limited by the wavelength scanning range - a smaller cavity requires a larger tuning range. Tunable lasers are now available with very large tuning ranges in the near infrared, potentially extending the measurement range significantly. The use of Fourier analysis on the intensity (interference) time history as a post processing step enables the measurement of cavity lengths without any 2pi phase ambiguity. This study demonstrates absolute length (thickness) measurements of various artifacts such as the thickness of a transparent window, gauge blocks, and the diameter of transparent spherical cavities such as a ball lens on a commercial wavelength scanning Fizeau interferometer. A mathematical model of the measurement process is demonstrated along with a software simulation model to understand the impact of dynamic parameters such as tuning rate on the thickness. Finally, a custom built wavelength scanning interferometer is designed from an existing wideband tunable laser in-house to demonstrate the thickness of sub-mm windows.
机译:波长扫描干涉仪通过测量腔体长度(厚度),腔体长度在腔体区域的变化(平坦度)以及透明腔体内的光学均匀性,为精确计量提供了新的维度。通过实现可调激光器而没有任何机械运动。当使用采用压电换能器的传统相移方法无法实现光学器件的物理运动时,此特性非常有用,并且可用于表征需要一个表面相对于另一个表面运动的固态光学腔。可以测量的腔长度受波长扫描范围的限制-较小的腔需要较大的调谐范围。现在,可调谐激光器在近红外范围内具有非常大的调谐范围,可能会大大扩展测量范围。使用强度(干扰)时间历程的傅立叶分析作为后处理步骤,可以测量腔体长度,而没有任何2pi相模糊性。这项研究表明,在商用波长扫描Fizeau干涉仪上,各种工件的绝对长度(厚度)测量值,例如透明窗口的厚度,量块以及透明球形腔体(例如球形透镜)的直径。演示了测量过程的数学模型以及软件仿真模型,以了解动态参数(例如调整率)对厚度的影响。最后,根据内部现有的宽带可调激光器设计定制的波长扫描干涉仪,以演示亚毫米窗口的厚度。

著录项

  • 作者

    Suratkar, Amit Ravindra.;

  • 作者单位

    The University of North Carolina at Charlotte.;

  • 授予单位 The University of North Carolina at Charlotte.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 116 p.
  • 总页数 116
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;
  • 关键词

  • 入库时间 2022-08-17 11:37:37

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