Kutas Mirco, Haase Björn, Bickert Patricia, Riexinger Felix, Molter Daniel, von Freymann Georg
Fraunhofer Institute for Industrial Mathematics ITWM, Fraunhofer-Platz 1, 67663 Kaiserslautern, Germany.
Department of Physics and Research Center OPTIMAS, Technische Universität Kaiserslautern (TUK), 67663 Kaiserslautern, Germany.
Sci Adv. 2020 Mar 13;6(11):eaaz8065. doi: 10.1126/sciadv.aaz8065. eCollection 2020 Mar.
Quantum sensing is highly attractive for accessing spectral regions in which the detection of photons is technically challenging: Sample information is gained in the spectral region of interest and transferred via biphoton correlations into another spectral range, for which highly sensitive detectors are available. This is especially beneficial for terahertz radiation, where no semiconductor detectors are available and coherent detection schemes or cryogenically cooled bolometers have to be used. Here, we report on the first demonstration of quantum sensing in the terahertz frequency range in which the terahertz photons interact with a sample in free space and information about the sample thickness is obtained by the detection of visible photons. As a first demonstration, we show layer thickness measurements with terahertz photons based on biphoton interference. As nondestructive layer thickness measurements are of high industrial relevance, our experiments might be seen as a first step toward industrial quantum sensing applications.
在感兴趣的光谱区域获取样本信息,并通过双光子关联将其转移到另一个光谱范围,对于该光谱范围有高灵敏度探测器可用。这对于太赫兹辐射尤为有益,因为在太赫兹波段没有可用的半导体探测器,必须使用相干探测方案或低温冷却的测辐射热计。在此,我们报告了太赫兹频率范围内量子传感的首次演示,其中太赫兹光子在自由空间与样本相互作用,并通过检测可见光子获得有关样本厚度的信息。作为首次演示,我们展示了基于双光子干涉的太赫兹光子层厚度测量。由于无损层厚度测量具有高度的工业相关性,我们的实验可能被视为迈向工业量子传感应用的第一步。