Title :
A 2.45-GHz Energy-Autonomous Wireless Power Relay Node
Author :
Del Prete, Massimo ; Costanzo, Alessandra ; Georgiadis, Apostolos ; Collado, Ana ; Masotti, Diego ; Popovic, Zoya
Author_Institution :
Dept. of Electr., Electron. & Inf. Eng., “Guglielmo Marconi”, Univ. of Bologna, Bologna, Italy
Abstract :
This paper describes the design and experimental characterization of a battery-less bidirectional 2.45-GHz circuit operating in oscillator mode as a wireless power transmitter or in rectifier mode as an energy harvester, with a measured efficiency greater than 50% in both operating states. The dc voltage harvested in rectifier mode provides the drain bias for the oscillator. The FET-gate self-bias mechanism is exploited in both functionalities, thus eliminating external gate bias. Bi-directionality is based on the time-reversal properties of a transistor oscillator. Energy autonomy is possible at received RF power levels as low as -4 dBm, by means of a bias-assisting feedback loop, consisting of a single matched low-power diode in shunt configuration. A hybrid prototype is demonstrated with the ability to operate as an energy-autonomous power relay node by switching between transmit and receive power modes.
Keywords :
UHF diodes; UHF field effect transistors; UHF oscillators; energy harvesting; logic gates; radio receivers; radio transmitters; rectifiers; relay networks (telecommunication); FET-gate self-bias mechanism; battery-less bidirectional circuit; bias-assisting feedback loop; drain bias; energy autonomy; energy harvester; energy-autonomous wireless power relay node; frequency 2.45 GHz; oscillator mode; receive power mode; received RF power levels; rectifier mode; shunt configuration; single matched low-power diode; time-reversal properties; transistor oscillator; transmit power mode; wireless power transmitter; Harmonic analysis; Logic gates; Oscillators; Power measurement; Radio frequency; Relays; Voltage measurement; Autonomous circuit; battery-less; energy harvesting; microwave oscillator; rectifier; wireless power transfer;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2015.2494003