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Autonomous self-powered potentiostat architecture for biomedical wearable applications., , , , , , , , , and . DCIS, page 1-6. IEEE, (2020)Self-Powered Point-of-Care Device for Galvanic Cell-Based Sample Concentration Measurement., , , and . Sensors, 21 (8): 2665 (2021)Fully Autonomous Active Self-Powered Point-of-Care Devices: The Challenges and Opportunities., , and . Sensors, 23 (23): 9453 (December 2023)Electrochemical Instrumentation of an Embedded Potentiostat System (EPS) for a Programmable-System-On-a-Chip., , , , , and . Sensors, 18 (12): 4490 (2018)Ubiquitous Self-Powered Architecture for Fuel Cell-Based Point-of-Care Applications., , , , and . IEEE Trans. Ind. Electron., 68 (11): 11447-11457 (2021)A 60 µW low-power low-voltage power management unit for a self-powered system based on low-cost piezoelectric powering generators., , , and . ESSCIRC, page 280-283. IEEE, (2009)A Proof-of-Concept of a Multi-harvesting Power Source in a Low-Voltage CMOS Technology., , , and . GreenCom, page 655-659. IEEE Computer Society, (2012)Self-Powered Portable Electronic Reader for Point-of-Care Amperometric Measurements., , , , and . Sensors, 19 (17): 3715 (2019)An Instantaneous Low-Cost Point-of-Care Anemia Detection Device., , , , , , and . Sensors, 15 (2): 4564-4577 (2015)Design of a Customized Multipurpose Nano-Enabled Implantable System for In-Vivo Theranostics., , , , , and . Sensors, 14 (10): 19275-19306 (2014)