DocumentCode :
1211999
Title :
Tailored and anisotropic dielectric constants through porosity in ceramic components
Author :
Gong, Xun ; She, Wing Han ; Hoppenjans, Eric E. ; Wing, Zach N. ; Geyer, Richard G. ; Halloran, John W. ; Chappell, William J.
Author_Institution :
Electr. & Comput. Eng. Dept., Univ. of Central Florida, Orlando, FL, USA
Volume :
53
Issue :
11
fYear :
2005
Firstpage :
3638
Lastpage :
3647
Abstract :
In this paper, different densities within a ceramic are used to provide a wide continuous range of dielectric constants for high-frequency applications. Cofiring different ceramic materials together to make a single unified structure to obtain different dielectric constant combinations is quite difficult due to phase stability issues and shrinkage mismatches. However, using various levels of porosity in order to alter the effective dielectric constant in the same material allows patterning different dielectric constants into a single unit. Since the structure is made from a single material, the varying porosity regions can be made compatible. Glassy-carbon-assisted and microcellular-structure-based porous titania allow for an extremely wide range of dielectric constants, ranging from 12 to 90, while maintaining a low loss tangent. Highly anisotropic materials are demonstrated herein to achieve a dielectric constant contrast of 90/9.6 using large-range aligned microcellular structure. Dielectric-resonator antennas are shown as an application of adjusting the bandwidth between 0.5% and 2.5% by tailoring the ceramic dielectric constant. A stratified-medium-loaded cavity resonator and a buried dielectric ring resonator internal to a microcellular substrate are used to demonstrate both the cofiring and variable dielectric constant capabilities of structured porosity.
Keywords :
cavity resonators; ceramics; crystal microstructure; dielectric resonator antennas; permittivity; porosity; anisotropic materials; ceramic; dielectric constants; dielectric resonator antennas; dielectric ring resonator; glassy carbon; microcellular structure; phase stability; porosity regions; porous titania; shrinkage mismatches; Anisotropic magnetoresistance; Bandwidth; Ceramics; Dielectric constant; Dielectric losses; Dielectric materials; Dielectric resonator antennas; Dielectric substrates; High-K gate dielectrics; Stability; Anisotropy; ceramic; dielectric materials; dielectric measurements; dielectric-resonator antenna (DRA); inhomogeneous media; resonator;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2005.859039
Filename :
1528818
Link To Document :
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