High-Performance Metal-Grid Polarizers on Polymeric Films for Broadband Terahertz Spectroscopy

Author(s):  
Sergei A. Kuznetsov ◽  
Alexander V. Gelfand ◽  
Alexander A. Mamrashev ◽  
Fedor A. Minakov ◽  
Nazar A. Nikolaev
2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Lars Liebermeister ◽  
Simon Nellen ◽  
Robert B. Kohlhaas ◽  
Sebastian Lauck ◽  
Milan Deumer ◽  
...  

AbstractBroadband terahertz spectroscopy enables many promising applications in science and industry alike. However, the complexity of existing terahertz systems has as yet prevented the breakthrough of this technology. In particular, established terahertz time-domain spectroscopy (TDS) schemes rely on complex femtosecond lasers and optical delay lines. Here, we present a method for optoelectronic, frequency-modulated continuous-wave (FMCW) terahertz sensing, which is a powerful tool for broadband spectroscopy and industrial non-destructive testing. In our method, a frequency-swept optical beat signal generates the terahertz field, which is then coherently detected by photomixing, employing a time-delayed copy of the same beat signal. Consequently, the receiver current is inherently phase-modulated without additional modulator. Owing to this technique, our broadband terahertz spectrometer performs (200 Hz measurement rate, or 4 THz bandwidth and 117 dB peak dynamic range with averaging) comparably to state-of-the-art terahertz-TDS systems, yet with significantly reduced complexity. Thickness measurements of multilayer dielectric samples with layer-thicknesses down to 23 µm show its potential for real-world applications. Within only 0.2 s measurement time, an uncertainty of less than 2 % is achieved, the highest accuracy reported with continuous-wave terahertz spectroscopy. Hence, the optoelectronic FMCW approach paves the way towards broadband and compact terahertz spectrometers that combine fiber optics and photonic integration technologies.


2013 ◽  
Vol 34 (6) ◽  
pp. S179-S199 ◽  
Author(s):  
W Zouaghi ◽  
M D Thomson ◽  
K Rabia ◽  
R Hahn ◽  
V Blank ◽  
...  

2019 ◽  
Vol 46 (6) ◽  
pp. 0614017 ◽  
Author(s):  
朱中杰 Zhongjie Zhu ◽  
任冠华 Guanhua Ren ◽  
成超 Chao Cheng ◽  
吴志鹏 Zhipeng Wu ◽  
张建兵 Jianbing Zhang ◽  
...  

2020 ◽  
Vol 475 ◽  
pp. 126267 ◽  
Author(s):  
Guanhua Ren ◽  
Zhongjie Zhu ◽  
Jianbing Zhang ◽  
Hongwei Zhao ◽  
Yanfeng Li ◽  
...  

2013 ◽  
Vol 84 (3) ◽  
pp. 033102 ◽  
Author(s):  
J. Barros ◽  
C. Evain ◽  
L. Manceron ◽  
J.-B. Brubach ◽  
M.-A. Tordeux ◽  
...  

2021 ◽  
Vol 2021 ◽  
pp. 1-8
Author(s):  
Tianyi Kou ◽  
Ji Ye ◽  
Jing Wang ◽  
Yan Peng ◽  
Zefang Wang ◽  
...  

Panax quinquefolium is a perennial herbaceous plant that contains many beneficial ginsenosides with diverse pharmacological effects. 24(R)-pseudoginsenoside F11 is specific to P. quinquefolium, a useful biomarker for distinguishing this species from other related plants. However, because of its nonconjugated property and the complexity of existing detection methods, this biomarker cannot be used as the identification standard. We herein present a stable 24(R)-pseudoginsenoside F11 fingerprint spectrum in the terahertz band, thereby proving that F11 can be detected and quantitatively analyzed via terahertz spectroscopy. We also analyzed the sample by high-performance liquid chromatography-triple quadrupole mass spectrometry. The difference between the normalized data for the two analytical methods was less than 5%. Furthermore, P. quinquefolium from different areas and other substances can be clearly distinguished based on these terahertz spectra with a standard principal component analysis. Our method is a fast, simple, and cost-effective approach for identifying and quantitatively analyzing P. quinquefolium.


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