DocumentCode
37552
Title
Low-Temperature Superconducting DC-Contact RF MEMS Switch for Cryogenic Reconfigurable RF Front-Ends
Author
Attar, Sara S. ; Setoodeh, Sormeh ; Mansour, Raafat R. ; Gupta, Deepika
Author_Institution
Electr. & Comput. Eng. Dept., Univ. of Waterloo, Waterloo, ON, Canada
Volume
62
Issue
7
fYear
2014
fDate
Jul-14
Firstpage
1437
Lastpage
1447
Abstract
A niobium-based superconducting dc-contact RF microelectromechanical systems switch is introduced and is thoroughly analyzed. The switch is amenable to integration with superconducting microelectronics technology. A comparison of the switch´s RF performance at room and cryogenic temperatures indicates a significant improvement in the insertion loss of the switch when niobium is superconducting. The mechanical characteristic of the switch at extremely low temperature (4 K) is also investigated. The switch exhibits an increase of 18% on the actuation voltage as the temperature changes from 293 K (room temperature) to 4 K. A niobium superconducting tunable resonator is designed and tested, employing the proposed switch as the tuning element in the form of a switched capacitor bank monolithically integrated with the resonator. The measured results at 4 K clearly indicate the discrete resonance frequency states of the resonator. A three-pole tunable bandstop filter is designed with a center frequency of 1.2 GHz and dimensions of only 5 mm × 1.2 mm. The results demonstrate a tuning range of 12% while maintaining an excellent RF response of the filter.
Keywords
UHF filters; band-stop filters; cryogenic electronics; electrical contacts; micromechanical resonators; microswitches; niobium; superconducting resonators; superconducting switches; switched capacitor networks; Nb; cryogenic reconfigurable RF front-end; cryogenic temperature; frequency 1.2 GHz; insertion loss improvement; low-temperature superconducting DC-contact RF MEMS switch; monolithically integrated switched capacitor bank resonator; niobium superconducting tunable resonator; niobium-based superconducting dc-contact RF microelectromechanical systems; superconducting microelectronics technology; temperature 293 K to 298 K; temperature 4 K; three-pole tunable bandstop filter; Microswitches; Niobium; Radio frequency; Structural beams; Substrates; Temperature measurement; Cryogenics; RF; microelectromechanical systems (MEMS); switches; tunable filters; tunable resonators;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/TMTT.2014.2327205
Filename
6825922
Link To Document