TY - JOUR
T1 - A 220-GHz Cryogenic Quasi-Optical Schottky Subharmonic In-Phase Quadrature Demodulation Receiver
AU - Li, Huanxin
AU - Gao, Xiang
AU - Qiao, Dan
AU - Chen, Ziru
AU - Bu, Xiangyuan
AU - An, Jianping
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - This article presents a 220-GHz cryogenic quasi-optical Schottky subharmonic in-phase quadrature (IQ) demodulation receiver for terahertz (THz) applications. To achieve spatial separation of the local oscillator and radio-frequency coupling signals, we propose a dual-band dual-beam antenna, comprising a monopole lens antenna and a microstrip patch array. Such quasi-optical coupling design not only facilitates thermal isolation for cryogenic electronic systems, but also avoid the beam-splitter losses endured by conventional quasi-optical receivers, thereby maximizing system performance. Moreover, we propose a compact IQ demodulation circuit design based on the dual-band quadrature hybrid, which features reduced complexity and lower insertion loss as compared with traditional approaches. A prototype of 220-GHz cryogenic quasi-optical Schottky subharmonic IQ demodulation receiver was fabricated and experimentally verified at 60 K. Operating over a RF bandwidth of 212–228 GHz, the receiver has a measured average single-sideband (SSB) conversion gain of around -12 dB and double-sideband (DSB) noise factor of around 3 dB for the I or Q output, respectively. These results have demonstrated the superior receiver performance and its application potentials.
AB - This article presents a 220-GHz cryogenic quasi-optical Schottky subharmonic in-phase quadrature (IQ) demodulation receiver for terahertz (THz) applications. To achieve spatial separation of the local oscillator and radio-frequency coupling signals, we propose a dual-band dual-beam antenna, comprising a monopole lens antenna and a microstrip patch array. Such quasi-optical coupling design not only facilitates thermal isolation for cryogenic electronic systems, but also avoid the beam-splitter losses endured by conventional quasi-optical receivers, thereby maximizing system performance. Moreover, we propose a compact IQ demodulation circuit design based on the dual-band quadrature hybrid, which features reduced complexity and lower insertion loss as compared with traditional approaches. A prototype of 220-GHz cryogenic quasi-optical Schottky subharmonic IQ demodulation receiver was fabricated and experimentally verified at 60 K. Operating over a RF bandwidth of 212–228 GHz, the receiver has a measured average single-sideband (SSB) conversion gain of around -12 dB and double-sideband (DSB) noise factor of around 3 dB for the I or Q output, respectively. These results have demonstrated the superior receiver performance and its application potentials.
KW - Cryogenic quasi-optical receiver
KW - dual-band dual-beam antenna
KW - in-phase quadrature (IQ) demodulation
KW - Schottky subharmonic receiver
KW - terahertz (THz) receiver
UR - http://www.scopus.com/inward/record.url?scp=105001471764&partnerID=8YFLogxK
U2 - 10.1109/TMTT.2024.3447762
DO - 10.1109/TMTT.2024.3447762
M3 - Article
AN - SCOPUS:105001471764
SN - 0018-9480
VL - 73
SP - 1473
EP - 1486
JO - IEEE Transactions on Microwave Theory and Techniques
JF - IEEE Transactions on Microwave Theory and Techniques
IS - 3
ER -