Title :
Design Optimization and Implementation for RF Energy Harvesting Circuits
Author :
Nintanavongsa, Prusayon ; Muncuk, Ufuk ; Lewis, David Richard ; Chowdhury, Kaushik Roy
Author_Institution :
Dept. of Electr. & Comput. Eng., Northeastern Univ., Boston, MA, USA
fDate :
3/1/2012 12:00:00 AM
Abstract :
A new design for an energy harvesting device is proposed in this paper, which enables scavenging energy from radiofrequency (RF) electromagnetic waves. Compared to common alternative energy sources like solar and wind, RF harvesting has the least energy density. The existing state-of-the-art solutions are effective only over narrow frequency ranges, are limited in efficiency response, and require higher levels of input power. This paper has a twofold contribution. First, we propose a dual-stage energy harvesting circuit composed of a seven-stage and ten-stage design, the former being more receptive in the low input power regions, while the latter is more suitable for higher power range. Each stage here is a modified voltage multiplier, arranged in series and our design provides guidelines on component choice and precise selection of the crossover operational point for these two stages between the high (20 dBm) and low power (-20 dBm) extremities. Second, we fabricate our design on a printed circuit board to demonstrate how such a circuit can run a commercial Mica2 sensor mote, with accompanying simulations on both ideal and non-ideal conditions for identifying the upper bound on achievable efficiency. With a simple yet optimal dual-stage design, experiments and characterization plots reveal approximately 100% improvement over other existing designs in the power range of -20 to 7 dBm.
Keywords :
UHF integrated circuits; circuit optimisation; energy harvesting; integrated circuit design; voltage multipliers; Mica2 sensor mote; RF energy harvesting circuits; crossover operational point; design optimization; dual-stage energy harvesting circuit; efficiency response; energy density; energy harvesting device design; energy scavenging; ideal conditions; nonideal conditions; radiofrequency electromagnetic waves; seven-stage design; ten-stage design; upper bound identification; voltage multiplier; Antennas; Energy harvesting; Impedance; Optimization; Radio frequency; Schottky diodes; Wireless sensor networks; 915 MHz; Optimization; Schottky diode; power efficiency; radio-frequency (RF) energy harvesting circuit; sensor; voltage multiplier;
Journal_Title :
Emerging and Selected Topics in Circuits and Systems, IEEE Journal on
DOI :
10.1109/JETCAS.2012.2187106