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Novel devices and systems for terahertz spectroscopy and imaging.

机译:用于太赫兹光谱学和成像的新型设备和系统。

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This doctoral thesis documents my research on novel devices and systems for terahertz (THz) spectroscopy and imaging. The research is particularly focused on the manipulation of THz radiation, including subwavelength concentration and low-loss wave guiding.; One of the major obstacles for THz imaging is the poor spatial resolution due to the diffraction of the long-wavelength light source. To break this restriction, we build a THz near-field microscopy system by combining apertureless near-field scanning optical microscopy (ANSOM) with terahertz time-domain spectroscopy (THz-TDS). The experimental result indicates a sub-wavelength spatial resolution of about 10 micron. Abnormal frequency response of the ANSOM probe tip is observed, and a dipole antenna model is developed to explain the bandwidth reduction of the detected THz pulses. We also observe and characterize the THz wave propagation on the near-field probe in ANSOM. These studies not only demonstrate the feasibility of ANSOM in the THz frequency range, but also provide fundamental insights into the near-field microscopy in general, such as the broadband compatibility, the propagation effects and the antenna effects.; Motivated by our study of the propagation effects in THz ANSOM, we characterize the guided mode of THz pulses on a bare metal wire by directly measuring the spatial profile of electric field of the mode, and find that the wire structure can be used to guide THz waves with outstanding performance. This new broadband THz waveguide exhibits very small dispersion, extremely low attenuation and remarkable structural simplicity. These features make it especially suitable for use in THz sensing and imaging systems. The first THz endoscope is demonstrated based on metal wire waveguides. To improve the input coupling efficiency of such waveguides, we develop a photoconductive antenna with radial symmetry which can generate radially polarized THz radiation matching the waveguide mode. Through THz-TDS measurements and theoretical calculations, we study the dispersion relation of the surface waves on metal wires, which indicates the increasing importance of skin effects for surface waves in the THz frequency range.
机译:该博士论文记录了我对太赫兹(THz)光谱学和成像的新型设备和系统的研究。研究特别集中在太赫兹辐射的操纵上,包括亚波长集中和低损耗波导。太赫兹成像的主要障碍之一是由于长波长光源的衍射而导致的空间分辨率差。为了克服这一限制,我们通过结合无孔近场扫描光学显微镜(ANSOM)和太赫兹时域光谱仪(THz-TDS)来构建THz近场显微镜系统。实验结果表明亚波长空间分辨率约为10微米。观察到ANSOM探针尖端的异常频率响应,并开发了偶极天线模型来解释检测到的THz脉冲的带宽减小。我们还观察并表征了ANSOM中近场探头上的太赫兹波传播。这些研究不仅证明了ANSOM在太赫兹频率范围内的可行性,而且还提供了对一般近场显微技术的基本了解,例如宽带兼容性,传播效应和天线效应。通过研究THz ANSOM中的传播效应,我们通过直接测量模态电场的空间分布来表征裸金属线上的THz脉冲的导模,并发现导线结构可用于指导THz表现出色。这种新型宽带太赫兹波导具有非常小的色散,极低的衰减和非凡的结构简单性。这些功能使其特别适合在太赫兹感测和成像系统中使用。首次展示了基于金属线波导的太赫兹内窥镜。为了提高此类波导的输入耦合效率,我们开发了一种具有径向对称性的光电导天线,它可以产生与波导模式匹配的径向极化的THz辐射。通过THz-TDS测量和理论计算,我们研究了表面波在金属线上的色散关系,这表明在THz频率范围内趋肤效应对于表面波的重要性越来越高。

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