Title :
Novel material with narrow-band transparency window in the bulk
Author :
Kyriazidou, Chryssoula A. ; Diaz, Rodolfo E. ; Alexópoulos, Nicólaos G.
Author_Institution :
Dept. of Electr. Eng., California Univ., Los Angeles, CA, USA
fDate :
1/1/2000 12:00:00 AM
Abstract :
This paper presents the theoretical design of an artificial dielectric exhibiting narrowband frequency selective properties in the bulk without relying on periodic placement of elements. In this manner, it initiates a novel approach that bypasses the drawbacks of the traditional frequency selective surfaces (FSS), namely, unwanted passbands, dependence on excitation angle and polarization, and difficulties in conversion from planar to curved geometries. The key design elements are the concentric geometry of the inclusions and the use of Lorentzian resonant media. A discussion of physical resonant materials is presented, substantiating the credibility of the theoretical design. To illustrate the approach, a novel complex medium is synthesized as an ensemble of spherical particles composed of a lossy core coated with a highly resonant dielectric layer and embedded into a dielectric host. The resulting structure is an amorphous substance, lossy over its entire spectrum except for two narrow-band transparency windows, where it may become as lossless as desired. The parameter space of the system is thoroughly analyzed which determines the type of constitutive materials and geometries for tailor-designing the windows according to specifications (shape, positioning and overall normalization). In this sense, the lossy concentric structure forms an ideal candidate for thin absorbing films (TAFs) with extensive applications in antenna systems, RF absorbers, and anechoic chambers
Keywords :
absorbing media; anechoic chambers (acoustic); antennas; composite materials; dielectric materials; dielectric resonance; electromagnetic wave absorption; electromagnetic wave polarisation; frequency selective surfaces; microwave materials; periodic structures; FSS; Lorentzian resonant media; RF absorbers; amorphous substance; anechoic chambers; antenna systems; artificial dielectric design; bulk composite matter; concentric geometry; constitutive materials; dielectric host; frequency selective surfaces; highly resonant dielectric layer; inclusions; lossy concentric structure; lossy core; microwave region; narrow-band transparency window; narrowband frequency selective properties; normalization; novel complex medium; parameter space; periodic structures; physical resonant materials; positioning; shape; spherical particles; thin absorbing films; Amorphous materials; Dielectric losses; Dielectric materials; Frequency selective surfaces; Geometry; Narrowband; Passband; Polarization; Resonance; Shape;
Journal_Title :
Antennas and Propagation, IEEE Transactions on