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Mitigating the effects of granular scattering using cepstrum analysis in terahertz time-domain spectral imaging

机译:在太赫兹时域频谱成像中使用倒谱分析减轻颗粒散射的影响

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摘要

Terahertz (THz) imaging is a widely used technique in the study and detection of many chemicals and biomolecules in polycrystalline form because the spectral absorption signatures of these target materials often lie in the THz frequencies. When the size of dielectric grain boundaries are comparable to the THz wavelengths, spectral features can be obscured due to electromagnetic scattering. In this study, we first investigate this granular scattering effect in identification of chemicals with THz spectral absorption features. We then will propose a signal processing technique in the so-called “quefrency” domain to improve the ability to resolve these spectral features in the diffuse scattered THz images. We created a pellet with α-lactose monohydrate and riboflavin, two biologically significant materials with well-known vibrational spectral resonances, and buried the pellet in a highly scattering medium. THz transmission measurements were taken at all angles covering the half focal plane. We show that, while spectral features of lactose and riboflavin cannot be distinguished in the scattered image, application of cepstrum filtering can mitigate these scattering effects. By employing our quefrency-domain signal processing technique, we were able to unambiguously detect the dielectric resonance of lactose in the diffused scattering geometries. Finally we will discuss the limitation of the new proposed technique in spectral identification of chemicals.
机译:太赫兹(THz)成像技术是研究和检测多晶形式的许多化学物质和生物分子的一种广泛使用的技术,因为这些目标材料的光谱吸收特征通常在于THz频率。当介电晶粒边界的大小与THz波长相当时,由于电磁散射,光谱特征可能会变得模糊。在这项研究中,我们首先研究这种颗粒散射效应,以鉴定具有THz光谱吸收特征的化学物质。然后,我们将提出一种所谓的“频率”域中的信号处理技术,以提高解决这些弥散的THz图像中的频谱特征的能力。我们用α-乳糖一水合物和核黄素(一种具有众所周知的振动光谱共振的生物学上重要的两种材料)制成了沉淀,并将该沉淀埋在高度散射的介质中。在覆盖半焦平面的所有角度进行太赫兹透射率测量。我们显示,虽然乳糖和核黄素的光谱特征无法在散射图像中区分开,但倒谱滤波的应用可以减轻这些散射效应。通过使用我们的频率域信号处理技术,我们能够明确检测出乳糖在扩散散射几何结构中的介电共振。最后,我们将讨论新提出的技术在化学光谱识别中的局限性。

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