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Overcoming Inherent Narrow Bandwidth and Low Radiation Properties of Electrically Small Antennas by Using an Active Interior-Matching Circuit.

, , , , and . IEEE Access, (2021)

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Single MMIC receivers for C-band T/R module in 0.25 μm GaN technology., , , , , , and . PRIME, page 201-204. IEEE, (2018)Metasurface-Based Wideband MIMO Antenna for 5G Millimeter-Wave Systems., , , , , , , , , and . IEEE Access, (2021)A MMIC power amplifier in GaN on Si technology for next generation Q band high throughput satellite systems., , , , , and . Integr., (2019)Broadband Amplifier Design Technique by Dissipative Matching Networks., , , , , , and . IEEE Trans. Circuits Syst. I Regul. Pap., 68 (1): 148-160 (2021)Multimode HMSIW-Based Bandpass Filter with Improved Selectivity for Fifth-Generation (5G) RF Front-Ends., , , , , and . Sensors, 20 (24): 7320 (2020)A Ka-Band Low-Noise Amplifier for Space Applications in a 100 nm GaN on Si technology., , , , , and . PRIME, page 161-164. IEEE, (2019)A Planar Diversity Loop Antenna Array with Improved Properties for 5G Mobile Phones., , , , , , , and . CAMAD, page 1-4. IEEE, (2020)Verifying Rollett's Proviso on Active Devices Under Arbitrary Passive Embeddings., , , and . IEEE Trans. Circuits Syst. II Express Briefs, 64-II (8): 932-936 (2017)MMIC LNAs for Radioastronomy Applications Using Advanced Industrial 70 nm Metamorphic Technology., , , and . IEEE J. Solid State Circuits, 45 (10): 2008-2015 (2010)A 4W 37.5-42.5 GHz Power Amplifier MMIC in GaN on Si Technology., , , , and . PRIME, page 137-140. IEEE, (2018)