Title :
Analysis and Design of Three-Layer Perfect Metamaterial-Inspired Absorber Based on Double Split-Serration-Rings Structure
Author :
Si-jia Li ; Xiang-yu Cao ; Jun Gao ; Tao Liu ; Yue-Jun Zheng ; Zhao Zhang
Author_Institution :
Inf. & Navig. Coll., Air Force Eng. Univ., Xi´an, China
Abstract :
We systematically analyzed, designed, fabricated, and measured a three-layer perfect metamaterial-inspired absorber based on the double split-serration-rings (DSSRs) structure in this communication. The equivalent circuit model was presented to demonstrate the absorbing mechanism. The characters of polarized-insensitivity, wideband, and multiband absorption for the absorber were illuminated by the angular absorptions and surface current distributions. Transformation from wideband absorption with a relative bandwidth of 93.5% from 5.34 to 14.72 GHz, of which the absorptivity was larger than 90%, to multiband absorption was obtained by rotating DSSR-II of 90°. Two absorber prototypes with a thickness of 3.6 mm had been easily implemented using the common printed circuit board fabrication techniques and measured in a microwave anechoic chamber. Simulated and experimental results indicated that the perfect metamaterial-inspired absorber performed wideband and multiband absorption when DSSRs were perpendicular and parallel to each other, respectively.
Keywords :
anechoic chambers (electromagnetic); electromagnetic metamaterials; electromagnetic wave absorption; electromagnetic wave polarisation; printed circuit manufacture; absorbing mechanism; angular absorptions; bandwidth 5.34 GHz to 14.72 GHz; common printed circuit board fabrication; double split-serration-rings structure; equivalent circuit; microwave anechoic chamber; multiband absorption; polarized-insensitivity; surface current distributions; three-layer perfect metamaterial-inspired absorber; wideband absorption; Absorption; Decision support systems; Impedance; Substrates; Surface impedance; Wideband; Cost-efficient bandwidth; Metamaterial-inspired absorber; Surface current distribution; Wideband; metamaterial-inspired absorber; surface current distribution; wideband;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2015.2475634