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首页> 外文期刊>Journal of biomedical optics >Analyzing Quantitative Light Scattering Spectra Of Phantoms Measured With Optical Coherence Tomography
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Analyzing Quantitative Light Scattering Spectra Of Phantoms Measured With Optical Coherence Tomography

机译:分析用光学相干层析成像技术测量的幻像的定量光散射光谱

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摘要

We demonstrate the ability of multiple forms of optical coherence tomography (OCT) in the frequency domain to quantitatively size scatterers. Combined with a variety of distinct phantoms, we gain insight into the measurement uncertainties associated with using scattering spectra to size scatterers. We size spherical scatterers on a surface using swept-source OCT with an analysis based on a simple slab-mode resonance model. Automating this technique, a two-dimensional (2-D) image is created by raster scanning across a surface phantom designed to have a distinct size transition to demonstrate accuracy and repeatability. We also investigate the potential of a novel sphere-nanotube structure as a quantitative calibration artifact for use in comparing measured intensity and phase scattering spectra directly to Mie theory predictions. In another experiment, we demonstrate tissue-relevant sizing of scatterers as small as 5 μm on a surface by use of a Fourier domain OCT system with 280 nm of bandwidth from a supercontinuum source. We perform an uncertainty analysis for our high-resolution sizing system, estimating a sizing error of 9% for measurements of spheres with a diameter of 15 μm. With appropriate modifications, our uncertainty analysis has general applicability to other sizing techniques utilizing scattering spectra.
机译:我们证明了在频域中多种形式的光学相干断层扫描(OCT)能够定量散射体的能力。结合各种不同的幻像,我们可以深入了解与使用散射光谱确定散射体大小相关的测量不确定性。我们使用扫频源OCT在表面上确定球形散射体的大小,并基于简单的平板模式共振模型进行分析。自动化该技术时,通过在表面模型上进行光栅扫描可创建二维(2-D)图像,该模型被设计为具有明显的尺寸过渡,以显示准确性和可重复性。我们还研究了新颖的球形纳米管结构作为定量校准工件的潜力,可用于将测得的强度和相位散射光谱直接与Mie理论预测进行比较。在另一个实验中,我们证明了通过使用傅立叶域OCT系统从超连续谱来源获得的280 nm带宽,可以在表面上将与散射体相关的大小调整为5μm。我们对高分辨率的尺寸调整系统执行不确定性分析,对于直径为15μm的球体,估计尺寸误差为9%。通过适当的修改,我们的不确定性分析可普遍应用于其他利用散射光谱的上浆技术。

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