A metamaterial electromagnetic energy rectifying surface with high harvesting efficiency
Author(s) -
Xin Duan,
Xing Chen,
Lin Zhou
Publication year - 2016
Publication title -
aip advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.421
H-Index - 58
ISSN - 2158-3226
DOI - 10.1063/1.4972121
Subject(s) - metamaterial , optoelectronics , rectenna , materials science , metamaterial absorber , impedance matching , metamaterial antenna , energy harvesting , electrical impedance , schottky diode , electromagnetic radiation , optics , rectification , diode , microwave , energy conversion efficiency , power (physics) , antenna (radio) , electrical engineering , physics , tunable metamaterials , dipole antenna , computer science , slot antenna , telecommunications , engineering , quantum mechanics
A novel metamaterial rectifying surface (MRS) for electromagnetic energy capture and rectification with high harvesting efficiency is presented. It is fabricated on a three-layer printed circuit board, which comprises an array of periodic metamaterial particles in the shape of mirrored split rings, a metal ground, and integrated rectifiers employing Schottky diodes. Perfect impedance matching is engineered at two interfaces, i.e. one between free space and the surface, and the other between the metamaterial particles and the rectifiers, which are connected through optimally positioned vias. Therefore, the incident electromagnetic power is captured with almost no reflection by the metamaterial particles, then channeled maximally to the rectifiers, and finally converted to direct current efficiently. Moreover, the rectifiers are behind the metal ground, avoiding the disturbance of high power incident electromagnetic waves. Such a MRS working at 2.45 GHz is designed, manufactured and measured, achieving a harvesting efficiency up to 66.9% under an incident power density of 5 mW/cm2, compared with a simulated efficiency of 72.9%. This high harvesting efficiency makes the proposed MRS an effective receiving device in practical microwave power transmission applications
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