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非垂直入射时涂层厚度的太赫兹时域光谱反射测量:实验与模拟

THz-TDS Reflection Measurement of Coating Thicknesses at Non-Perpendicular Incidence: Experiment and Simulation.

作者信息

Burger Ruben, Frisch Julia, Hübner Matthias, Goldammer Matthias, Peters Ole, Rönneberg Enno, Wu Datong

机构信息

Department of Applied Sciences and Mechatronics, Hochschule München University of Applied Sciences, Lothstrasse 34, 80335 Munich, Germany.

Siemens Technology, Siemens AG, Otto-Hahn-Ring 6, 81739 München, Germany.

出版信息

Sensors (Basel). 2021 May 16;21(10):3473. doi: 10.3390/s21103473.

Abstract

Time-domain spectroscopy (TDS) in the terahertz (THz) frequency range is gaining in importance in nondestructive testing of dielectric materials. One application is the layer thickness measurement of a coating layer. To determine the thickness from the measurement data, the refractive index of the coating layer must be known in the surveyed frequency range. For perpendicular incidence of the radiation, methods exist to extract the refractive index from the measurement data themselves without prior knowledge. This paper extends these methods for non-perpendicular incidence, where the polarization of the radiation becomes important. Furthermore, modifications considering effects of surface roughness of the coating are introduced. The new methods are verified using measurement data of a sample of Inconel steel coated with yttria-stabilized zirconia (YSZ) and with COMSOL simulations of the measurement setup. To validate the thickness measurements, scanning electron microscopy (SEM) images of the layer structure are used. The results show good agreement with an average error of 1% for the simulation data and under 4% for the experimental data compared to reference measurements.

摘要

太赫兹(THz)频段的时域光谱技术(TDS)在介电材料的无损检测中越来越重要。一个应用是涂层厚度的测量。为了从测量数据中确定厚度,必须知道涂层在测量频率范围内的折射率。对于辐射的垂直入射,存在无需先验知识就能从测量数据本身提取折射率的方法。本文将这些方法扩展到非垂直入射情况,此时辐射的偏振变得很重要。此外,还引入了考虑涂层表面粗糙度影响的修正。使用涂有氧化钇稳定氧化锆(YSZ)的因科镍合金钢样品的测量数据以及测量装置的COMSOL模拟对新方法进行了验证。为了验证厚度测量结果,使用了层结构的扫描电子显微镜(SEM)图像。结果表明,与参考测量相比,模拟数据的平均误差为1%,实验数据的平均误差在4%以下,二者吻合良好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4a0/8156446/7e820820d564/sensors-21-03473-g0A1.jpg

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