Structure and mesoscopic characterization of laser ablated carbon nanoparticles in water by Raman scattering

J. Cárdenas, T. Cadenbach, Z.B. Zhang, C. Costa-Vera, S.-L. Zhang, J. L. Paz
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Abstract

Optical coherence tomography (OCT) is one of the most advanced optical measurement techniques for complex structure visualization. The advantages of OCT have been used for surface and subsurface defect detection in composite materials, polymers, ceramics, non-metallic protective coatings, and many more. Our research activity has been focused on timefrequency spectroscopic analysis in OCT. It is based on time resolved spectral analysis of the backscattered optical signal delivered by the OCT. The time-frequency method gives spectral characteristic of optical radiation backscattered or backreflected from the particular points inside the tested device. This provides more information about the sample, which are useful for further analysis. Nowadays, the applications of spectroscopic analysis for composite layers characterization or tissue recognition have been reported. During our studies we have found new applications of spectroscopic analysis. We have used this method for thickness estimation of thin films, which are under the resolution of OCT. Also, we have combined the spectroscopic analysis with polarization sensitive OCT (PS-OCT). This approach enables to obtain a multiorder retardation value directly and may become a breakthrough in PS-OCT measurements of highly birefringent media. In this work, we present the time-frequency spectroscopic algorithms and their applications for OCT. Also, the theoretical simulations and measurement validation of this method are shown.
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激光烧蚀纳米碳在水中的结构及介观表征
光学相干层析成像(OCT)是复杂结构可视化中最先进的光学测量技术之一。OCT的优点已被用于复合材料、聚合物、陶瓷、非金属保护涂层等的表面和亚表面缺陷检测。我们的研究活动一直集中在oct的时频光谱分析上,它是基于对oct传递的后向散射光信号的时间分辨光谱分析,时频方法给出了被测器件内部特定点的光辐射后向散射或后向反射的光谱特性。这提供了关于样本的更多信息,这些信息对进一步分析很有用。目前,光谱分析在复合材料层表征或组织识别方面的应用已有报道。在我们的研究中,我们发现了光谱分析的新应用。我们将该方法应用于OCT分辨率下的薄膜厚度估计,并将光谱分析与偏振敏感OCT (PS-OCT)相结合。该方法可以直接获得多阶延迟值,可能成为高双折射介质PS-OCT测量的一个突破。本文介绍了时频光谱算法及其在oct中的应用,并给出了该方法的理论仿真和测量验证。
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