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A self-powered WSAN for energy efficient heat distribution., , , , , , and . SAS, page 1-6. IEEE, (2016)A Long-Distance RF-Powered Sensor Node with Adaptive Power Management for IoT Applications., , , , , , , , , and . Sensors, 17 (8): 1732 (2017)A 54.8-nW, 256-bit Codeword Temperature-Robust Wake-Up Receiver minimizing False Wake-Ups for Ultra-Low-Power IoT Systems., , , , , , and . ICECS 2022, page 1-4. IEEE, (2022)BEE-DRONES: Energy-efficient Data Collection on Wake-Up Radio-based Wireless Sensor Networks., , , , , , , and . INFOCOM Workshops, page 547-553. IEEE, (2019)An embedded PCM Peripheral Unit adding Analog MAC In-Memory Computing Feature addressing Non-linearity and Time Drift Compensation., , , , , , , , and . ESSCIRC, page 109-112. IEEE, (2022)PV Cell Characteristic Extraction to Verify Power Transfer Efficiency in Indoor Harvesting System., , , and . CAMAD, page 1-6. IEEE, (2018)A 40 nm CMOS I/O Pad Design With Embedded Capacitive Coupling Receiver for Non-Contact Wafer Probe Test., , , and . IEEE Trans. Circuits Syst. I Regul. Pap., 62-I (7): 1737-1746 (2015)Throughput Enhancement in UAV-aided Wireless Sensor Networks via Wake-Up Radio Technology and Priority-based MAC Scheme., , , , , and . WF-IoT, page 1-6. IEEE, (2020)Nanowatt Wake-Up Radios: Discrete-Components and Integrated Architectures., , , , , , , , and . ICECS, page 793-796. IEEE, (2018)Nanowatt Clock and Data Recovery for Ultra-Low Power Wake-Up Based Receivers., , , , , , , , and . EWSN, page 224-229. ACM, (2020)