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Analysis and Design of Power-Efficient H-Band CMOS Frequency Doubler Employing Gain Boosting and Harmonic Enhancing Techniques.

, , , and . IEEE Access, (2023)

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Analysis and Design of Power-Efficient H-Band CMOS Frequency Doubler Employing Gain Boosting and Harmonic Enhancing Techniques., , , and . IEEE Access, (2023)A 19.8W/29.6W Hybrid Step-Up/Down DC-DC Converter with 97.2% Peak Efficiency for 1-Cell/2-Cell Battery Charger Applications., , , , and . VLSI Technology and Circuits, page 1-2. IEEE, (2023)A 22.8-to-32.4 GHz Injection-locked Frequency Tripler with Source Degeneration., , , , , and . ISOCC, page 107-108. IEEE, (2018)Ka-band RF Front-End with 5dB NF and 16dB conversion gain in 45nm CMOS technology., , , , , and . ISOCC, page 105-106. IEEE, (2018)A 3 to 6 GHz Highly Linear I-Channel Receiver with over +3.0 dBm In-Band P1dB and 200 MHz Baseband Bandwidth Suitable for 5G Wireless and Cognitive Radio Applications., , , and . ISCAS, page 1. IEEE, (2020)A Low-Noise and Fast-Settling UHF RFID Receiver With Digitally Controlled Leakage Cancellation., , , , , and . IEEE Trans. Circuits Syst. II Express Briefs, 68 (8): 2810-2814 (2021)Injection-Locked Frequency Divider Topology and Design Techniques for Wide Locking-Range and High-Order Division., , and . IEEE Access, (2017)LNA topologies for RX carrier aggregation., , , and . ISOCC, page 21-22. IEEE, (2016)Low-Power, Low-Cost CMOS Direct-Conversion Receiver Front-End for Multistandard Applications., and . IEEE J. Solid State Circuits, 48 (9): 2090-2103 (2013)A Low-Complexity I/Q Imbalance Calibration Method for Quadrature Modulator., , , , , and . ISCAS, page 1. IEEE, (2020)