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The attenuated total reflection (ATR) apparatus, with an added partial reflection/partial transmission mode, was used to demonstrate a novel way of characterizing water-based substances at 0.7 to 10.0 THz at the Australian Synchrotron THz-far infrared beamline. The technique utilized a diamond-crystal-equipped ATR to track temperature-dependent changes in reflectance. A "crossover flare" feature in the spectral scan was noted, which appeared to be a characteristic of water and water-dominated compounds. A "quiet zone" feature was also seen, where no temperature-dependent variation in reflectance exists. The variation in these spectral features can be used as a signature for the presence of bound and bulk water. The method can also potentially identify the presence of fats and oils in a biological specimen. The technique requires minimal sample preparation and is non-destructive. The presented method has the promise to provide a novel, real-time, low-preparation, analytical method for investigating biological material, which offers avenues for rapid medical diagnosis and industrial analysis.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9658767 | PMC |
http://dx.doi.org/10.3390/s22218363 | DOI Listing |
Sci Rep
August 2025
Department of Electrical and Computer Engineering, University of Mohaghegh Ardabili, Ardabil, Iran.
This study presents a biosensor based on cleaved graphene, compared with a graphene-gold nanoparticle structure, for detecting carcinoembryonic antigen (CEA), leveraging graphene's tunable resonance frequency and the structure's polarization-independent performance. This sensor consists of three layers: a gold substrate with a conductivity of 4.7 × 10, a silicon dioxide (SiO) dielectric layer with a permeability of 3.
View Article and Find Full Text PDFThermal terahertz (THz) sensors can detect broadband THz waves; however, they lack frequency selectivity, which hinders their application to spectroscopic measurements. In this study, we imparted frequency selectivity by including an antenna structure within the photo-thermo-electric (PTE) sensor. We used laser ablation to process a carbon nanotube film into a 100 $\upmu $m-scale wire-grid structure and generated a THz resonance in it.
View Article and Find Full Text PDFUltrafast THz transients with large spectral bandwidths are commonly generated in the two-color air-plasma scheme, typically driven by high-pulse-energy laser sources, operating at low repetition rates up to a few kHz. The low repetition rate of these sources is a strong limiting factor to reaching high dynamic ranges in measurements involving long integration times or multi-dimensional scans. The advent of high-power Yb-based laser sources in combination with nonlinear temporal compression schemes opens the door to air-plasma THz sources at significantly higher repetition rates up to hundreds of kHz and beyond.
View Article and Find Full Text PDFWe investigate the physical mechanisms of the interaction between terahertz waves and antioxidant 1010 in polyethylene (PE) using terahertz time-domain spectroscopy (THz-TDS). The THz waves are generated by an InGaAs photoconductive emitter antenna and detected by an InGaAs photoconductive receiver antenna, which are both driven by a pulsed laser with a wavelength of 1560 nm, pulse repetition rate of 80 MHz, and pulse duration of 100 fs. With increasing concentrations of antioxidants, the absorption spectrum exhibits a marked increase in the intensity of the absorption peaks at 0.
View Article and Find Full Text PDFTerahertz waves possess unique electromagnetic properties, such as penetration, high capacity, and non-destructive testing capabilities, making the study of their absorption characteristics highly significant. Building on previous narrowband and broadband research, this paper introduces an absorber capable of switching between narrowband and broadband modes. This absorber leverages the tunability of graphene and the phase transition properties of vanadium dioxide (VO) to achieve adjustable and switchable absorption characteristics.
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