TY - JOUR
T1 - A Mode-Suppressing Metasurface for Large-Width MMICs Suitable for Tightly-Packaged Millimeter and Submillimeter Heterodyne Receivers
AU - Monasterio, David
AU - Castro, Nelson
AU - Pizarro, Jose
AU - Pizarro, Francisco
AU - Mena, Fausto Patricio
N1 - Publisher Copyright:
IEEE
PY - 2021
Y1 - 2021
N2 - When packaging large-width microwave integrated circuits, care has to be taken to avoid structures that could sustain unwanted oscillations. Unfortunately, this situation may not be attainable since large holding cavities are prone to support parasitic waveguide modes that could produce a feedback loop which, in turn, is especially dangerous in high-gain components with poor match with subsequent elements. This letter presents a scalable metasurface, implemented as a gap-waveguide perfect magnetic conductor, suitable to overcome this problem in millimeter- and submillimeter-band receivers. The proposed solution was integrated into a compact W-Band (75-110 GHz) receiver where a large chip-width amplifier was placed near a mixer, thus generating oscillations at high-gain levels compromising its operation at some frequencies. The metasurface was incorporated at the top of the amplifier's cavity where it did not only suppressed completely the oscillation but also increased isolation between components. As a result, the receiver became fully operational as attested by measurements of its noise temperature at the compromised frequencies.
AB - When packaging large-width microwave integrated circuits, care has to be taken to avoid structures that could sustain unwanted oscillations. Unfortunately, this situation may not be attainable since large holding cavities are prone to support parasitic waveguide modes that could produce a feedback loop which, in turn, is especially dangerous in high-gain components with poor match with subsequent elements. This letter presents a scalable metasurface, implemented as a gap-waveguide perfect magnetic conductor, suitable to overcome this problem in millimeter- and submillimeter-band receivers. The proposed solution was integrated into a compact W-Band (75-110 GHz) receiver where a large chip-width amplifier was placed near a mixer, thus generating oscillations at high-gain levels compromising its operation at some frequencies. The metasurface was incorporated at the top of the amplifier's cavity where it did not only suppressed completely the oscillation but also increased isolation between components. As a result, the receiver became fully operational as attested by measurements of its noise temperature at the compromised frequencies.
KW - Frequency measurement
KW - Low-noise amplifiers
KW - Metasurfaces
KW - microwave amplifiers
KW - microwave integrated circuits
KW - millimeter wave devices
KW - Mixers
KW - periodic structures
KW - PMC packaging
KW - Power measurement
KW - Radio frequency
KW - Receivers
KW - Temperature measurement
KW - waveguide package
UR - http://www.scopus.com/inward/record.url?scp=85113240346&partnerID=8YFLogxK
U2 - 10.1109/TTHZ.2021.3105580
DO - 10.1109/TTHZ.2021.3105580
M3 - Article
AN - SCOPUS:85113240346
SN - 2156-342X
JO - IEEE Transactions on Terahertz Science and Technology
JF - IEEE Transactions on Terahertz Science and Technology
ER -