DocumentCode
2938031
Title
Subcell models with application to split-ring resonators in the infrared
Author
Johnson, W.A. ; Warne, L.K. ; Basilio, L.I. ; Langston, W.L. ; Sinclair, M.B.
Author_Institution
Electromagn. Effects, Sandia Nat. Labs., Albuquerque, NM, USA
fYear
2011
fDate
3-8 July 2011
Firstpage
342
Lastpage
345
Abstract
Simplified wire-type models for split-ring resonators (SRRs), both in free-space and above a dielectric half-space, are developed. The gap of the SRR in the wire model is accurately represented by including a lumped load which is the difference between the actual gap fringe capacitance and the capacitance inherent in the code wire kernel for a delta gap voltage source. The SRR arms are represented by generalized thin wires that have both an electric equivalent radius (for the rectangular conductor resting on a dielectric substrate) and a magnetic equivalent radius (for a rectangular conductor in free space, since the substrate is assumed to be nonmagnetic). In addition, an impedance per unit length (due to finite penetration of the fields into the metal) enters a local transmission line part of the generalized thin-wire algorithm. The results from the thin-wire subcell model are compared to full wave simulations of the arrays of SRR´s. The full wave simulations require tens of thousands of unknowns to resolve the field penetration into the finite conductors for a single SRR, whereas the thin-wire model has good accuracy with only tens of unknowns.
Keywords
resonators; wires (electric); actual gap fringe capacitance; code wire kernel; delta gap voltage source; dielectric half-space; electric equivalent radius; finite conductor; full wave simulation; infrared; lumped load; magnetic equivalent radius; split-ring resonator; thin-wire algorithm; thin-wire subcell model; transmission line; Capacitance; Conductors; Gallium arsenide; Gold; Load modeling; Numerical models; Wires; dynamic thin-wire subcell-models; electro-static capacitance calculations; metamaterials; split-ring resonators;
fLanguage
English
Publisher
ieee
Conference_Titel
Antennas and Propagation (APSURSI), 2011 IEEE International Symposium on
Conference_Location
Spokane, WA
ISSN
1522-3965
Print_ISBN
978-1-4244-9562-7
Type
conf
DOI
10.1109/APS.2011.5996713
Filename
5996713
Link To Document