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 :
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