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InGaAs HEMT Technology for Submillimeter-Wave and Ultra-Wideband Monolithic Integrated Circuits., , , , , and . IGARSS, page 565-567. IEEE, (2023)Multibias scalable HEMT small-signal modeling based on a hybrid direct extraction/particle swarm optimization approach., , and . Microelectron. J., 43 (8): 562-568 (2012)Broadband Active Integrated Circuits for Terahertz Communication., , , , , and . EW, VDE-Verlag, (2012)W-band radiometer system with switching front-end for multi-load calibration., , , , , , and . IGARSS, page 3843-3846. IEEE, (2011)Metamorphic HEMT MMICs and Modules for Use in a High-Bandwidth 210 GHz Radar., , , , , , , , , and 3 other author(s). IEEE J. Solid State Circuits, 43 (10): 2194-2205 (2008)Wireless communications on THz carriers takes shape., , , , , , , , , and 6 other author(s). ICTON, page 1-4. IEEE, (2014)Advanced mHEMT Technologies for Use in Radar, Communication and Meteorological Applications., , , , , , , and . BCICTS, page 219-224. IEEE, (2023)Multi-Channel PA, LNA, and Switch MMICs for Beam-Switching Applications at 160 GHz, Based on an InGaAs mHEMT Technology., , , and . BCICTS, page 284-287. IEEE, (2023)Frequency Multiplier and Mixer MMICs Based on a Metamorphic HEMT Technology Including Schottky Diodes., , , , , , and . IEEE Access, (2020)Integrated 220-260 GHz Radar Frontend., , , , , and . BCICTS, page 235-238. IEEE, (2018)