DocumentCode :
107463
Title :
Performance of the Caltech Submillimeter Observatory Dual-Color 180–720 GHz Balanced SIS Receivers
Author :
Kooi, Jacob W. ; Chamberlin, R.A. ; Monje, R. ; Kovacs, Andras ; Rice, F. ; Yoshida, Hiroyuki ; Force, B. ; Cooper, Ken ; Miller, David ; Gould, Michael ; Lis, D. ; Bumble, B. ; LeDuc, R. ; Stern, J.A. ; Phillips, T.G.
Author_Institution :
Submillimeter Astron. & Instrum. Group, California I.nst. of Technol., Pasadena, CA, USA
Volume :
4
Issue :
2
fYear :
2014
fDate :
Mar-14
Firstpage :
149
Lastpage :
164
Abstract :
In this paper, we report on balanced SIS receivers covering the astronomical important 180-720 GHz submillimeter atmospheric window. To facilitate remote observations and automated spectral line surveys, fully synthesized local oscillators are employed. High-current-density Nb-AlN-Nb superconducting-insulating-superconducting (SIS) tunnel junctions are used as the mixing element. The measured double-sideband (DSB) 230 GHz receiver noise temperature, uncorrected for optics loss, ranges from 50 K at 185 GHz, 33 K at 246 GHz, to 51 K at 280 GHz. In this frequency range the mixer has a DSB conversion gain of 0 ±1.5 dB. The measured 460 GHz double-sideband receiver noise temperature, uncorrected for optics loss, is 32 K at 400 GHz, 34 K at 460 GHz, and 61 K at 520 GHz. Similar to the 230 GHz balanced mixer, the DSB mixer conversion gain is 1 ±1 dB. To help optimize performance, the mixer IF circuits and bias injection are entirely planar by design. Dual-frequency observation, by means of separating the incoming circular polarized electric field into two orthogonal components, is another important mode of operation offered by the new facility instrumentation. Instrumental stability is excellent supporting the LO noise cancellation properties of the balanced mixer configuration. In the spring of 2012 the dual-frequency 230/460 SIS receiver was successfully installed at Caltech Submillimeter Observatory (CSO), Mauna Kea, HI, USA.
Keywords :
aluminium compounds; circuit stability; millimetre wave oscillators; millimetre wave receivers; niobium; optical losses; submillimetre wave oscillators; submillimetre wave receivers; superconducting device noise; superconductive tunnelling; superconductor-insulator-superconductor mixers; CSO; Caltech Submillimeter Observatory dual-color balanced SIS receiver; DSB mixer conversion gain; Instrumental stability; LO noise cancellation property; Mauna Kea HI USA; Nb-AlN-Nb; automated spectral line survey; circular polarized electric field; double-sideband receiver noise temperature; dual-frequency SIS receiver; frequency 180 GHz to 720 GHz; high-current-density superconducting-insulating-superconducting tunnel junction; mixer IF circuit; optics loss; oscillator; submillimeter atmospheric window; temperature 32 K; temperature 33 K; temperature 34 K; temperature 50 K; temperature 51 K; temperature 61 K; Bandwidth; Junctions; Mixers; Noise; Optical waveguides; Radio frequency; Receivers; AlN tunnel barrier; Allan variance; Superconducting–insulating–superconducting (SIS) mixer; Wilkinson in phase power combiner; amplitude noise rejection; balanced mixers; broadband waveguide transition; heterodyne receiver; high-current-density; multiple Andreev reflection (MAR); quantum noise limit; synthesized local oscillator (LO); system stability;
fLanguage :
English
Journal_Title :
Terahertz Science and Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
2156-342X
Type :
jour
DOI :
10.1109/TTHZ.2013.2293117
Filename :
6744661
Link To Document :
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