Title :
WGM resonator-based measurement technique for weakly and highly absorbing substances
Author :
Cherpak, Nickolay T. ; Barannik, Alexander A. ; Gubin, Alexey I.
Author_Institution :
Dept. of Solid State Radiophys., O.Ya.Usikov Inst. of Radiophys. & Electron., Kharkiv, Ukraine
Abstract :
We present the main peculiarities of the accurate microwave techniques for measuring the surface impedance properties of unconventional superconductors and the complex permittivity of biochemical liquids. The samples under test are substances with very small and very high losses of microwave energy. The techniques are developed by authors on the basis of high-Q whispering-gallery mode sapphire resonators of different geometry. The developed techniques allow measuring superconductors in forms of both large-area unpatterned films (up to 50mm diameter) and small single crystals (about 2×2×0.1mm3). They allow also measuring liquids under test of sub-microliter/nanoliter volumes. The authors underline a fundamental difference in the finding characteristics of the two types of substances which differ greatly by levels of microwave losses. Experimental data are obtained in Ka-band.
Keywords :
dielectric liquids; dielectric resonators; microwave measurement; microwave resonators; permittivity measurement; sapphire; superconducting materials; superconducting resonators; superconductivity; surface topography measurement; volume measurement; whispering gallery modes; WGM resonator-based measurement technique; biochemical liquid permittivity; geometry; high-q whispering-gallery mode sapphire resonator; highly absorbing substance; large-area patterned film; liquid under test measurement; microwave energy loss; microwave technique; samples under test; small single crystal; submicroliter-nanoliter volume measurement; superconductor; surface impedance property measurement; weakly absorbing substance; Frequency measurement; Frequency response; Liquids; Loss measurement; Monitoring; Permeability measurement; Superconductivity; Microwave measurements; complex permittivity; dielectric resonators; liquids; superconductors; surface impedance;
Conference_Titel :
Microwaves, Radar, and Wireless Communication (MIKON), 2014 20th International Conference on
Conference_Location :
Gdansk
Print_ISBN :
978-617-607-553-0
DOI :
10.1109/MIKON.2014.6899840