2000 IEEE. Personal use of this material is permitted. However, permission to reprint/republish this material for advertising or promotional purposes or for creating new collective works for resale or redistribution to servers or lists, or to reuse any copyrighted component of this work in other works must be obtained from the IEEE.

IEEE Transactions on Microwave Theory and Techniques
Volume 48 Number 10, October 2000

Table of Contents for this issue

Complete paper in PDF format

A Dual-Polarized Quasi-Optical SIS Mixer at 550 GHz

Goutam Chattopadhyay, Member, IEEE David Miller, Henry G. LeDuc and Jonas Zmuidzinas Member, IEEE

Page 1680.

Abstract:

In this paper, we describe the design, fabrication, and the performance of a low-noise dual-polarized quasi-optical superconductor-insulator-superconductor (SIS) mixer at 550 GHz. The mixer utilizes a novel cross-slot antenna on a hyperhemispherical substrate lens, two junction tuning circuits, niobium trilayer junctions, and an IF circuit containing a lumped element 180° hybrid. The antenna consists of an orthogonal pair of twin-slot antennas, and has four feed points, two for each polarization. Each feed point is coupled to a two-junction SIS mixer. The 180° IF hybrid is implemented using a lumped element/microstrip circuit located inside the mixer block. Fourier transform spectrometer measurements of the mixer frequency response show good agreement with computer simulations. The measured co-polarized and cross-polarized patterns for both polarizations also agree with the theoretical predictions. The noise performance of the dual-polarized mixer is excellent, giving uncorrected receiver noise temperature of better than 115 K (double sideband) at 528 GHz for both the polarizations.

References

  1. S. Raman and G. M. Rebeiz, "Single-and dual-polarized millimeter-wave slot-ring antennas", IEEE Trans. Antennas Propagat., vol. 44, pp.  1438-1444,  Nov.  1996.
  2. J. Zmuidzinas and H. G. LeDuc, "Quasi-optical slot antenna SIS mixers", IEEE Trans. Microwave Theory Tech., vol. 40, pp.  1797-1804, Sept.  1992.
  3. G. Chattopadhyay and J. Zmuidzinas, "A dual-polarized slot antenna for millimeter waves", IEEE Trans. Antennas Propagat., vol. 46, pp.  736-737,  May  1998.
  4. J. Zmuidzinas, H. G. LeDuc, J. A. Stern and S. R. Cypher, "Two-junction tuning circuits for submillimeter SIS mixers", IEEE Trans. Microwave Theory Tech., vol. 42, pp.  698-706, Apr.  1994.
  5. M. Bin, "Low-noise THz niobium SIS mixers", Ph.D. dissertation, Dept. Phys., California Inst. Technol., Pasadena, CA, Oct. 1996.
  6. "Microwave Design Systems (MDS), Version mds.07.10", Test and Measurement Organization, Hewlett-Packard Company, Palo Alto, CA,
  7. J. E. Carlstrom, R. L. Plembeck and D. D. Thornton, "A continuously tunable 65-115 GHz Gunn oscillator", IEEE Trans. Microwave Theory Tech., vol. MTT-33, pp.  610-619, July  1985.
  8. N. R. Erickson, "High efficiency submillimeter frequency multipliers", in IEEE MTT-S Int. Microwave Symp. Dig., Dallas, TX, May 1990, pp.  1301-1304. 
  9. J. Zmuidzinas, N. G. Ugras, D. Miller, M. C. Gaidis, H. G. LeDuc and J. A. Stern, "Low-noise slot antenna SIS mixers", IEEE Trans. Appl. Superconduct., vol. 5, pp.  3053-3056, June  1995.
  10. M. C. Gaidis, H. G. LeDuc, M. Bin, D. Miller, J. A. Stern and J. Zmuidzinas, "Characterization of low-noise quasi-optical SIS mixers for the submillimeter band", IEEE Trans. Microwave Theory Tech., vol. 44, pp.  1130-1139, July  1996.
  11. J. W. Kooi, , private communication, Sept. 1998
  12. D. A. Miller, "Comparison between theory and measurement of beam patterns for double-slot quasi-optical SIS mixers", M.S.E.E. thesis, Dept. Elect. Eng., California State Polytech. Univ., Pomona, CA, 1998.
  13. Q. Hu, C. A. Mears, P. L. Richards and F. L. Lloyd, "Measurement of integrated tuning elements for SIS mixers", Int. J. Infrared. Millim. Waves, vol. 9, pp.  303-320,  1988.
  14. G. Chattopadhyay, F. Rice, D. Miller, H. G. LeDuc and J. Zmuidzinas, "A 530-GHz balanced mixer", IEEE Microwave Guided Wave Lett., vol. 9, pp.  467-469, Nov.  1999.