DocumentCode
1523902
Title
Cut-Wire Metamaterial Design Based on Simplified Equivalent Circuit Models
Author
Wakatsuchi, Hiroki ; Paul, John ; Greedy, Stephen ; Christopoulos, Christos
Author_Institution
Dept. of Electr. & Electron. Eng., Univ. of Nottingham, Nottingham, UK
Volume
60
Issue
8
fYear
2012
Firstpage
3670
Lastpage
3678
Abstract
Effective equivalent circuits are used for the prediction of resonant and absorbing behavior of cut-wire-based (CW-based) metamaterials. Firstly, an equivalent circuit applicable to electric resonance frequencies of single CW metamaterial arrays is considered. Secondly, the equivalent circuit is extended for prediction of magnetic resonance frequencies of symmetrically paired CW metamaterial arrays and asymmetrically paired CW metamaterial arrays. Finally, since the magnetic resonance of the symmetrically paired CW arrays is analogous to the resonance of the CW metamaterial absorbers, i.e., absorbing behavior of the absorbers, the absorptance peak frequencies of CW metamaterial absorbers are estimated. Close agreement is obtained with numerically obtained values, the difference being typically 4, 6, 4, and 2% for the single CW, symmetrically paired CW, asymmetrically paired CW metamaterials and CW metamaterial absorbers, respectively. The paper concludes with discussions pointing out differences with a previous equivalent circuit and improvements to the proposed equivalent circuits.
Keywords
antenna arrays; equivalent circuits; magnetic resonance; metamaterial antennas; numerical analysis; CW metamaterial absorbers; asymmetrically paired CW metamaterial arrays; cut-wire metamaterial design; electric resonance frequencies; magnetic resonance frequency prediction; simplified equivalent circuit models; single CW metamaterial arrays; Capacitance; Equivalent circuits; Inductance; Magnetic materials; Magnetic resonance; Metamaterials; Absorbers; cut-wire metamaterials; equivalent circuits; metamaterials; resonant frequencies;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.2012.2201109
Filename
6204328
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