Title :
Frequency selective surface for radio frequency energy harvesting applications
Author :
Keyrouz, S. ; Perotto, G. ; Visser, Hubregt J.
Author_Institution :
Eindhoven Univ. of Technol., Eindhoven, Netherlands
Abstract :
A novel application for frequency selective surfaces (FSSs) is presented. The novel FSS design can harvest power from arbitrarily polarised incident waves. The design does not involve a matching network, which results in a simple, polarisation-independent power harvester. An accurate analytical procedure, to calculate the impedance of the commercially available Schottky rectifiers, is presented. The results are validated by full-wave simulations and by measurements. A simple equivalent circuit model to predict the transmission and reflection characteristics of the gridded-square-loop FSS is employed. The design method is validated for different polarisations and for different incident angles. The addition of lumped elements (R, L, C) in the metallic conductive grid of the FSS is investigated. The waveguide simulator method and full-wave simulations are employed to validate the derived analytical equations. A 3 × 3 and a 5 × 5 RF harvesting FSS have been designed, simulated, fabricated and validated. A radio frequency (RF) to DC conversion efficiency of 25% for the 3 × 3 RF harvester and 15.9% for the 5 × 5 RF harvester is measured at an RF input power level of -6 dBm.
Keywords :
electric impedance; electromagnetic wave polarisation; electromagnetic wave reflection; energy harvesting; equivalent circuits; frequency selective surfaces; rectennas; rectifiers; DC conversion efficiency; RF harvesting; Schottky rectifier; equivalent circuit model; frequency selective surface; full-wave simulation; gridded-square-loop FSS design; impedance calculation; lumped element; metallic conductive grid; polarisation-independent power harvester; polarised incident wave; radio frequency energy harvesting application; reflection characteristics; transmission characteristics; waveguide simulator method;
Journal_Title :
Microwaves, Antennas & Propagation, IET
DOI :
10.1049/iet-map.2013.0130