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Segmented Match-Line and Charge-Sharing Based Low-Cost TCAM.

, , , , and . IEEE Trans. Circuits Syst. II Express Briefs, 69 (12): 5104-5108 (2022)

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A Bidirectional High-Voltage Dual-Input Buck Converter for Triboelectric Energy-Harvesting Interface Achieving 70.72% End-to-End Efficiency., , , , and . VLSI Circuits, page 326-. IEEE, (2019)A Time-Based Direct MPPT Technique for Low-Power Photovoltaic Energy Harvesting., , , , and . IEEE Trans. Ind. Electron., 71 (5): 5375-5380 (May 2024)A High-Voltage Dual-Input Buck Converter Achieving 52.9% Maximum End-to-End Efficiency for Triboelectric Energy-Harvesting Applications., , , , and . IEEE J. Solid State Circuits, 55 (5): 1324-1336 (2020)23.7 Self-powered 30μW-to-10mW Piezoelectric energy-harvesting system with 9.09ms/V maximum power point tracking time., , , and . ISSCC, page 406-407. IEEE, (2014)Edge pursuit comparator with application in a 74.1dB SNDR, 20KS/s 15b SAR ADC., , , , , , , , and . ASP-DAC, page 295-296. IEEE, (2018)Self-Powered 30 µW to 10 mW Piezoelectric Energy Harvesting System With 9.09 ms/V Maximum Power Point Tracking Time., , , , and . IEEE J. Solid State Circuits, 50 (10): 2367-2379 (2015)A High-Voltage Dual-Input Buck Converter With Bidirectional Inductor Current for Triboelectric Energy-Harvesting Applications., , , , and . IEEE J. Solid State Circuits, 56 (2): 541-553 (2021)Segmented Match-Line and Charge-Sharing Based Low-Cost TCAM., , , , and . IEEE Trans. Circuits Syst. II Express Briefs, 69 (12): 5104-5108 (2022)A 4.5-to-16μW integrated triboelectric energy-harvesting system based on high-voltage dual-input buck converter with MPPT and 70V maximum input voltage., , , , , and . ISSCC, page 146-148. IEEE, (2018)A digitally controlled DC-DC buck converter with bang-bang control., , , , , and . ICEIC, page 1-2. IEEE, (2014)