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基于电光双梳和场效应晶体管探测器的高光谱太赫兹成像

Hyperspectral terahertz imaging with electro-optic dual combs and a FET-based detector.

作者信息

Martín-Mateos Pedro, Čibiraitė-Lukenskienė Dovilė, Barreiro Roberto, de Dios Cristina, Lisauskas Alvydas, Krozer Viktor, Acedo Pablo

机构信息

Electronic Technology Department, Universidad Carlos III de Madrid, Leganés, Spain.

Physikalisches Institut, Goethe Universität Frankfurt, Frankfurt, Germany.

出版信息

Sci Rep. 2020 Sep 2;10(1):14429. doi: 10.1038/s41598-020-71258-6.

Abstract

In this paper, a terahertz hyperspectral imaging architecture based on an electro-optic terahertz dual-comb source is presented and demonstrated. In contrast to single frequency sources, this multi-heterodyne system allows for the characterization of the whole spectral response of the sample in parallel for all the frequency points along the spectral range of the system. This hence provides rapid, highly consistent results and minimizes measurement artifacts. The terahertz illumination signal can be tailored (in spectral coverage and resolution) with high flexibility to meet the requirements of any particular application or experimental scenario while maximizing the signal-to-noise ratio of the measurement. Besides this, the system provides absolute frequency accuracy and a very high coherence that allows for direct signal detection without inter-comb synchronization mechanisms, adaptive acquisition, or post-processing. Using a field-effect transistor-based terahertz resonant 300 GHz detector and the raster-scanning method we demonstrate the two-dimensional hyperspectral imaging of samples of different kinds to illustrate the remarkable capabilities of this innovative architecture. A proof-of-concept demonstration has been performed in which tree leaves and a complex plastic fragment have been analyzed in the 300 GHz range with a frequency resolution of 10 GHz.

摘要

本文提出并展示了一种基于电光太赫兹双梳源的太赫兹高光谱成像架构。与单频源不同,这种多外差系统能够并行表征样品在系统光谱范围内所有频率点的整个光谱响应。因此,它能提供快速、高度一致的结果,并将测量伪像降至最低。太赫兹照明信号可以在光谱覆盖范围和分辨率方面进行高度灵活的定制,以满足任何特定应用或实验场景的要求,同时最大化测量的信噪比。除此之外,该系统具有绝对频率精度和非常高的相干性,无需梳状光之间的同步机制、自适应采集或后处理就能直接进行信号检测。我们使用基于场效应晶体管的太赫兹谐振300GHz探测器和光栅扫描方法,展示了不同种类样品的二维高光谱成像,以说明这种创新架构的卓越能力。已经进行了概念验证演示,其中在300GHz范围内以10GHz的频率分辨率对树叶和复杂塑料碎片进行了分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3698/7468264/6ab4da7fa69f/41598_2020_71258_Fig1_HTML.jpg

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