DocumentCode
1465922
Title
The effect of superconducting ground plane on microwave characteristics of unpatterned superconducting films in the mixed state
Author
Chien-Jang Wu ; Tsai, M.-H. ; Yang, H.D. ; Yu-Sheng Tsai
Author_Institution
Dept. of Electro-Opt. Eng., Nat. Huwei Inst. of Technol., Yunlin, Taiwan
Volume
8
Issue
4
fYear
1998
Firstpage
192
Lastpage
202
Abstract
We microwave characteristics of a multilayer structure made of a type-II superconducting thin film and a dielectric substrate together with a superconducting ground plane is studied theoretically by using the model of the self-consistent treatment of vortex dynamics. The dependence of reflection coefficient on the temperature and static magnetic field is reduced owing to the existence of the superconducting ground plane, especially at temperatures near T/sub c/ and at higher fields. Comparison of the interesting oscillation phenomenon in the associated effective surface resistance between the Meissner state (b=0) and mixed state (b/spl ne/0) is made. We find that the superconducting ground plane not only strongly narrows down the resonant peak shape but also enhances the peak height. Finally, a similar layered structure made of a superconducting thin film on a dielectric substrate shielded by a buffer layer is also considered. We specifically demonstrate that the buffer layer has essentially no substantial influence on microwave reflectance, transmittance, and complex surface impedance. The role played by the buffer layer is in great contrast to that in a planar transmission line.
Keywords
mixed state; superconducting thin films; Meissner state; buffer layer; dielectric substrate; microwave reflectance; microwave transmittance; mixed state; multilayer; superconducting ground plane; surface resistance; type II superconducting thin film; vortex dynamics; Buffer layers; Dielectric substrates; Land surface temperature; Magnetic multilayers; Reflection; Superconducting microwave devices; Superconducting thin films; Superconducting transmission lines; Surface resistance; Temperature dependence;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/77.740685
Filename
740685
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