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反射模式太赫兹固体浸没显微镜的物体相关空间分辨率。

Object-dependent spatial resolution of the reflection-mode terahertz solid immersion microscopy.

作者信息

Zhelnov V A, Zaytsev K I, Kucheryavenko A S, Katyba G M, Dolganova I N, Ponomarev D S, Kurlov V N, Skorobogatiy M, Chernomyrdin N V

出版信息

Opt Express. 2021 Feb 1;29(3):3553-3566. doi: 10.1364/OE.415049.

Abstract

Terahertz (THz) solid immersion microscopy is a novel promising THz imaging modality that overcomes the Abbe diffraction limit. In our prior work, an original reflection-mode THz solid immersion microscope system with the resolution of 0.15λ (in free space) was demonstrated and used for imaging of soft biological tissues. In this paper, a numerical analysis, using the finite-difference time-domain technique, and an experimental study, using a set of objects with distinct refractive indexes, were performed in order to uncover, for the first time, the object-dependent spatial resolution of the THz solid immersion microscopy. Our findings revealed that the system resolution remains strongly sub-wavelength 0.15-0.4λ for the wide range of sample refractive indices n = 1.0-5.0 and absorption coefficients α = 0-400 cm (by power). Considering these findings, two distinct regimes of the THz solid immersion microscopy were identified. First is the total internal reflection regime that takes place when the sample refractive index is relatively low, while the sub-wavelength resolution is enabled by both the evanescent and ordinary reflected waves at the interface between a high-refractive-index material and an imaged object. Second is the ordinary reflection regime that occurs when the sample refractive index is high enough, so that there is no more total internal reflection at the interface, while only the ordinary reflected waves inside a high-refractive-index material are responsible for the sub-wavelength resolution. The resultant conclusions are general and can be applied for analysis of solid immersion lenses operating in other spectral ranges, such as visible and infrared, given linear nature of the Maxwell's equations.

摘要

太赫兹(THz)固体浸没显微镜是一种新型且有前景的太赫兹成像方式,它克服了阿贝衍射极限。在我们之前的工作中,展示了一种分辨率为0.15λ(在自由空间中)的原始反射模式太赫兹固体浸没显微镜系统,并将其用于软生物组织成像。本文采用时域有限差分技术进行了数值分析,并使用一组具有不同折射率的物体进行了实验研究,以便首次揭示太赫兹固体浸没显微镜与物体相关的空间分辨率。我们的研究结果表明,对于折射率n = 1.0 - 5.0和吸收系数α = 0 - 400 cm⁻¹(按功率计)的广泛样本范围,系统分辨率在很大程度上仍保持亚波长,为0.15 - 0.4λ。基于这些发现,确定了太赫兹固体浸没显微镜的两种不同模式。第一种是全内反射模式,当样本折射率相对较低时发生,此时在高折射率材料与成像物体之间的界面处,倏逝波和普通反射波共同实现亚波长分辨率。第二种是普通反射模式,当样本折射率足够高时出现,此时界面处不再有全内反射,只有高折射率材料内部的普通反射波负责亚波长分辨率。鉴于麦克斯韦方程组的线性性质,所得结论具有普遍性,可应用于分析在其他光谱范围(如可见光和红外)中工作的固体浸没透镜。

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