DocumentCode :
1847783
Title :
Embedded-circuit meta-materials for novel design of tunable electro-ferromagnetic permeability, band-gap, and bianisotropic media
Author :
Sarabandi, K. ; Mosallaei, H.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI, USA
Volume :
3
fYear :
2003
fDate :
22-27 June 2003
Firstpage :
355
Abstract :
Utilizing the available materials in nature one can almost achieve any dielectric material with a relatively large permittivity property, however, the atoms and molecules have more restrictions to design a magnetic medium specially in gigahertz range. It is highly desirable if one could design a material with both permittivity and permeability parameters with a prescribed spectral characteristics. In this paper. we introduce an embedded-circuit meta-material composed of periodic high Q resonant circuits that it offers novel electromagnetic functionalities, namely, simultaneous high permittivity and permeability electro-ferromagnetic property, tunable band-gap, and tunable bianisotropic characteristics The electro-ferromagnetic property refers to a material whose permeability can be varied electronically by an applied DC electric field. The electronic tunability of electro-ferromagnetic, band-gap, and bianisotropic media is achieved by introducing BST varactors in the embedded-circuits. Exact analytical formulations for the effective parameters of the aforementioned embedded-circuit meta-materials are obtained using a transmission line analogy for a medium supporting TEM waves. A powerful finite difference time domain numerical technique is also employed to verify the analytical formulations and provide the wideband comprehensive characterization of the complex periodic structure.
Keywords :
anisotropic media; electromagnetic wave transmission; finite difference time-domain analysis; magnetic permeability; microwave materials; periodic structures; permittivity; photonic band gap; tuning; BST varactors; TEM waves; applied DC electric field; bianisotropic media; complex periodic structure; electronic tunability; embedded-circuit metamaterials; finite difference time domain numerical technique; high permeability; high permittivity; periodic high Q resonant circuits; tunable band-gap; tunable electro-ferromagnetic permeability; Dielectric materials; Electromagnetic fields; Magnetic materials; Magnetic properties; Magnetic resonance; Permeability; Permittivity; Photonic band gap; RLC circuits; Tunable circuits and devices;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Antennas and Propagation Society International Symposium, 2003. IEEE
Conference_Location :
Columbus, OH, USA
Print_ISBN :
0-7803-7846-6
Type :
conf
DOI :
10.1109/APS.2003.1219860
Filename :
1219860
Link To Document :
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