DocumentCode
1083799
Title
Two-junction tuning circuits for submillimeter SIS mixers
Author
Zmuidzinas, Jonas ; LeDuc, Henry G. ; Stern, Jeffrey A. ; Cypher, Scott R.
Author_Institution
George W. Downs Lab. of Phys., California Inst. of Technol., Pasadena, CA, USA
Volume
42
Issue
4
fYear
1994
fDate
4/1/1994 12:00:00 AM
Firstpage
698
Lastpage
706
Abstract
The capacitance of superconducting tunnel junctions can seriously degrade the performance of quasiparticle (SIS) mixers operating in the submillimeter band, so it is essential to provide a circuit for tuning out this capacitance at the operating frequency. In this article, we present two new tuning circuits for SIS mixers which use a pair of SIS junctions connected by an inductance. Compared to previously proposed tuning circuits, ours have a broader bandwidth, are easier to scale to higher frequencies, and may be easier to fabricate. We have constructed quasi-optical mixers which employ these tuning circuits, using Nb/Al-Oxide/Nb SIS junctions defined by optical lithography. The performance of these devices is excellent, giving receiver noise temperatures of 113 K (DSB) at 490 GHz and 230 K DSB at 612 GHz. In addition to demonstrating the effectiveness of our tuning circuit, these results show that quasi-optical mixers can be competitive with or superior to waveguide mixers at submillimeter wavelengths. The mixers continue to perform well at frequencies up to 672 GHz, which is about 95% of the Nb gap frequency
Keywords
aluminium compounds; microwave integrated circuits; mixers (circuits); niobium; photolithography; submillimetre wave devices; superconducting integrated circuits; tuning; 113 K; 230 K; 490 GHz; 612 GHz; 672 GHz; Nb gap frequency; Nb-Al2O3-Nb; Nb/Al-oxide/Nb SIS junctions; SIS junctions; broader bandwidth; capacitance; higher frequencies; inductance; operating frequency; optical lithography; quasi-optical mixers; quasiparticle SIS mixers; receiver noise temperatures; submillimeter SIS mixers; submillimeter band; superconducting tunnel junctions; two-junction tuning circuits; Capacitance; Circuit optimization; Frequency; Josephson junctions; Niobium; Optical noise; Optical receivers; Optical tuning; Optical waveguides; Superconducting devices;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/22.285084
Filename
285084
Link To Document