Vol. 90

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2020-04-11

W-Band Subharmonic Mixer with Silica-Based Post-Wall Waveguide Interface

By Tomas Thuroczy, Vitaliy Zhurbenko, Tom Keinicke Johansen, Yusuke Uemichi, Osamu Nukaga, Satoshi Okude, and Ning Guan
Progress In Electromagnetics Research Letters, Vol. 90, 105-111, 2020
doi:10.2528/PIERL20012207

Abstract

This paper presents the design of a compact size, passive, W to K band subharmonic mixer with post-wall waveguide (substrate integrated waveguide) RF input interface. The mixer is based on a silica-glass structure where the post-wall waveguide and microstrip line are on separate substrates. This configuration maximizes the performance as the substrate thicknesses can be separately optimized for the lowest loss and mono-mode operation. Integration of different types of guiding structures also allows realization of e.g. millimetre-wave waveguide filters and microstrip circuits in a single structure, while preserving low-cost, low-weight and compact size. Furthermore, post-wall waveguides can be easily interfaced with conventional rectangular waveguides, as demonstrated in the paper, which simplifies millimeter-wave circuit packaging and eventual system integration. Design methodology of the mixer and transition circuits as well as measurements are presented. Minimum conversion loss of 19.6 dB was achieved at 86 GHz with 13.7 dBm/32.4 GHz LO signal. The presented design would be suitable for the future W-band cellular, radar or satellite communication systems.

Citation


Tomas Thuroczy, Vitaliy Zhurbenko, Tom Keinicke Johansen, Yusuke Uemichi, Osamu Nukaga, Satoshi Okude, and Ning Guan, "W-Band Subharmonic Mixer with Silica-Based Post-Wall Waveguide Interface," Progress In Electromagnetics Research Letters, Vol. 90, 105-111, 2020.
doi:10.2528/PIERL20012207
http://test.jpier.org/PIERL/pier.php?paper=20012207

References


    1. Raman, S., F. Rucky, and G. M. Rebeiz, "A high-performance W-band uniplanar subharmonic mixer," IEEE Transactions on Microwave Theory and Techniques, Vol. 45, No. 6, 955-962, Jun. 1997.
    doi:10.1109/22.588609

    2. Xue, Q., K. M. Shum, and C. H. Chan, "Low conversion-loss fourth subharmonic mixers incorporating CMRC for millimeter-wave applications," IEEE Transactions on Microwave Theory and Techniques, Vol. 51, No. 5, 1449-1454, May 2003.
    doi:10.1109/TMTT.2003.810153

    3. Cohn, M., J. E. Degenford, and B. A. Newman, "Harmonic mixing with an antiparallel diode pair," IEEE Transactions on Microwave Theory and Techniques, Vol. 23, No. 8, 667-673, Aug. 1975.
    doi:10.1109/TMTT.1975.1128646

    4. Xu, Z., Y. Cui, J. Xu, J. Guo, and C. Qian, "Low cost W-band sub-harmonic mixer using quasi- MMIC technology," 2015 IEEE International Wireless Symposium (IWS 2015), 1-4, Shenzhen, 2015.

    5. Fujiwara, K. and T. Kobayashi, "Low-cost W-band frequency converter with broad-band waveguide-to-microstrip transducer," 2016 Global Symposium on Millimeter Waves (GSMM) & ESA Workshop on Millimetre-Wave Technology and Applications, 1-4, Espoo, 2016.

    6. Grine, F., T. Djerafi, M. T. Benhabiles, K. Wu, and M. L. Riabi, "High-Q substrate integrated waveguide resonator filter with dielectric loading," IEEE Access, Vol. 5, 12526-12532, 2017.
    doi:10.1109/ACCESS.2017.2711958

    7. Chen, X., K. Wu, L. Han, and F. He, "Low-cost high gain planar antenna array for 60-GHz band applications," IEEE Transactions on Antennas and Propagation, Vol. 58, No. 6, 2126-2129, Jun. 2010.
    doi:10.1109/TAP.2010.2046861

    8. Uemichi, Y., et al., "Compact and low-loss bandpass filter realized in silica-based post-wall waveguide for 60-GHz applications," 2015 IEEE MTT-S International Microwave Symposium, 1-3, Phoenix, AZ, 2015.

    9. Uemichi, Y., et al., "A 60-GHz six-pole quasi-elliptic bandpass filter with novel feeding mechanisms based on silica-based post-wall waveguide," 2017 IEEE MTT-S International Microwave Symposium (IMS), 1282-1284, Honololu, HI, 2017.

    10. Uemichi, Y., O. Nukaga, X. Han, K. Kobayashi, S. Amakawa, and N. Guan, "Temperature dependence of bandpass filters built of silica-based post-wall waveguide for millimeter-wave applications," 2018 48th European Microwave Conference (EuMC), 703-706, Madrid, 2018.
    doi:10.23919/EuMC.2018.8541433

    11. Xu, F. and K. Wu, "Guided-wave and leakage characteristics of substrate integrated waveguide," IEEE Transactions on Microwave Theory and Techniques, Vol. 53, No. 1, 66-73, Jan. 2005.
    doi:10.1109/TMTT.2004.839303

    12. Deslandes, D. and K. Wu, "Integrated transition of coplanar to rectangular waveguides," 2001 IEEE MTT-S International Microwave Symposium Digest, (Cat. No.01CH37157), 2001.

    13. Yeap, K. H., C. Y. Tham, G. Yassin, and K. C. Yeong, "Propagation in lossy rectangular waveguides," Electromagnetic Waves Propagation in Complex Matter, Ahmed Kishk, IntechOpen, Jul. 5, 2011.

    14. Maas, S. A., Microwave Mixers, Artech House, 1986.

    15. Rizzi, P. A., Microwave Engineering: Passive Circuits, Prentice Hall, 1988.

    16. Pozar, D. M., "Microwave Engineering," Wiley, 2017.

    17. Bahl, I. J., M. Bozzi, and R. Garg, Microstrip Lines and Slotlines, 3rd Ed., Artech House, 2013.

    18. Garg, R., P. Bhartia, I. J. Bahl, and A. Ittipiboon, Microstrip Antenna Design Handbook, Artech House, 2001.