microwave microscope
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Sensors ◽  
2021 ◽  
Vol 21 (16) ◽  
pp. 5463
Author(s):  
José D. Gutiérrez-Cano ◽  
José M. Catalá-Civera ◽  
Pedro J. Plaza-González ◽  
Felipe L. Peñaranda-Foix

This paper describes the use of microwave technology to identify anti-counterfeiting markers on banknotes. The proposed method is based on a robust near-field scanning microwave microscope specially developed to measure permittivity maps of heterogeneous paper specimens at the micrometer scale. The equipment has a built-in vector network analyzer to measure the reflection response of a near-field coaxial probe, which makes it a standalone and portable device. A new approach employing the information of a displacement laser and the cavity perturbation technique was used to determine the relationship between the dielectric properties of the specimens and the resonance response of the probe, avoiding the use of distance-following techniques. The accuracy of the dielectric measurements was evaluated through a comparative study with other well-established cavity methods, revealing uncertainties lower than 5%, very similar to the accuracy reported by other more sophisticated setups. The device was employed to determine the dielectric map of a watermark on a 20 EUR banknote. In addition, the penetration capabilities of microwave energy allowed for the detection of the watermark when concealed behind dielectric or metallic layers. This work demonstrates the benefits of this microwave technique as a novel method for identifying anti-counterfeiting features, which opens new perspectives with which to develop optically opaque markers only traceable through this microwave technique.





2021 ◽  
Vol 92 (2) ◽  
pp. 023705
Author(s):  
T. Le Quang ◽  
A. C. Gungor ◽  
D. Vasyukov ◽  
J. Hoffmann ◽  
J. Smajic ◽  
...  




2020 ◽  
Vol 10 (1) ◽  
Author(s):  
Ying Liu ◽  
G. Sreenivasulu ◽  
P. Zhou ◽  
J. Fu ◽  
D. Filippov ◽  
...  

AbstractThis report is on studies directed at the nature of magneto-electric (ME) coupling by ferromagnetic resonance (FMR) under an electric field in a coaxial nanofiber of nickel ferrite (NFO) and lead zirconate titanate (PZT). Fibers with ferrite cores and PZT shells were prepared by electrospinning. The core–shell structure of annealed fibers was confirmed by electron- and scanning probe microscopy. For studies on converse ME effects, i.e., the magnetic response of the fibers to an applied electric field, FMR measurements were done on a single fiber with a near-field scanning microwave microscope (NSMM) at 5–10 GHz by obtaining profiles of both amplitude and phase of the complex scattering parameter S11 as a function of bias magnetic field. The strength of the voltage-ME coupling Av was determined from the shift in the resonance field Hr for bias voltage of V = 0–7 V applied to the fiber. The coefficient Av for the NFO core/PZT shell structure was estimated to be − 1.92 kA/Vm (− 24 Oe/V). A model was developed for the converse ME effects in the fibers and the theoretical estimates are in good agreement with the data.



Author(s):  
Gianluca Fabi ◽  
C. H. Joseph ◽  
Xin Jin ◽  
Xiaopeng Wang ◽  
Tiziana Pietrangelo ◽  
...  






2019 ◽  
Vol 114 (9) ◽  
pp. 093703 ◽  
Author(s):  
Marco Farina ◽  
Xin Jin ◽  
Gianluca Fabi ◽  
Eleonora Pavoni ◽  
Andrea di Donato ◽  
...  




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