Claims
- 1. A tunable antenna comprising:a stacked assembly including: a feeder-resonator disposed on a layer of ferroelectric material; a radiator that includes an electrically conductive layer disposed on a layer of dielectric material and that is disposed above said feeder resonator; a support structure that supports said radiator above said layer of ferroelectric material with an air gap therebetween; and wherein said feeder-resonator is located within said air gap, wherein electromagnetic energy is coupled from said feeder-resonator via said air gap to said radiator, wherein said stacked assembly exhibits a resonant frequency that is tunable in response to a bias voltage applied to said ferroelectric layer, and wherein said layer of dielectric material has a higher permittivity than that of said layer of ferroelectric material.
- 2. The tunable antenna of claim 1, wherein said air gap defines a separation distance from said feeder-resonator to a bottom surface of said dielectric layer that is at least 4 times the thickness of said layer of ferroelectric material.
- 3. The tunable antenna of claim 1, wherein said electrically conductive layer has a dimension equal to or smaller than that of said feeder-resonator.
- 4. The tunable antenna of claim 1, wherein a DC bias pad is positioned substantially at a centerline of said feeder-resonator to avoid excitation of higher wave modes, wherein said DC pad allows said bias voltage to be applied across said layer of ferroelectric material, thereby changing the dielectric properties of said ferroelectric material and thereby changing the resonance frequency of said stacked assembly.
- 5. The tunable antenna of claim 4, wherein an input signal feed line for said feeder-resonator is disposed on said layer of ferroelectric material, and wherein said feed line is offset from said centerline.
- 6. The tunable antenna of claim 1, wherein said ferroelectric material includes barium strontium titanate.
- 7. The tunable antenna of claim 1, further comprising an electrically conductive ground plane disposed beneath said layer of ferroelectric material.
- 8. The tunable antenna of claim 7, further comprising means for applying said bias voltage between said feeder-resonator and said ground plane.
- 9. The tunable antenna of claim 1, wherein a tunable feed network for said feeder-resonator is disposed on said layer of ferroelectric material.
- 10. The tunable antenna of claim 9, wherein said tunable feed network includes a quarter wavelength transformer, and wherein said tunable feed network provides a tunable impedance matching to said feeder-resonator.
- 11. The tunable antenna of claim 10, wherein said air gap defines a separation distance from said feeder-resonator to a bottom surface of said dielectric layer that is at least 4 times the thickness of said layer of ferroelectric material.
- 12. The tunable antenna of claim 9, wherein said electrically conductive layer has a dimension equal to or smaller than that of said feeder-resonator.
- 13. The tunable antenna of claim 9, wherein a DC bias pad is positioned substantially at a centerline of said feeder-resonator to avoid excitation of higher wave modes, wherein said DC pad allows said bias voltage to be applied across said feeder-resonator, thereby changing the dielectric properties of said layer of ferroelectric material and thereby changing the resonance frequency of said stacked assembly.
- 14. The tunable antenna of claim 9, wherein said ferroelectric material includes barium strontium titanate.
- 15. A tunable antenna that exhibits enhanced gain over a wide frequency band comprising:a ferroelectric substrate with a feeder resonator disposed thereon; and a radiator disposed above said ferroelectric substrate and separated therefrom by an air gap, wherein said air gap is about four times a thickness of said ferroelectric substrate such that an enhanced gain is produced substantially over said wide frequency band.
- 16. The tunable antenna of claim 15, wherein a tunable feed network for said feeder-resonator is disposed on said ferroelectric substrate, and wherein said tunable feed network provides a tunable impedance matching to said feeder-resonator.
- 17. A tunable antenna that exhibits enhanced gain over a wide frequency band comprising:a ferroelectric substrate with a feeder resonator disposed thereon; and a radiator that includes an electrical conductor disposed on a layer of dielectric material is disposed above said ferroelectric substrate and separated therefrom by an air gap, wherein said dielectric material has a dielectric constant that is at least about 6.25 times that of said ferroelectric substrate such that an enhanced gain is produced substantially over said wide frequency band.
- 18. The tunable antenna of claim 17, wherein said air gap is about four times a thickness of said ferroelectric substrate.
Parent Case Info
This application claims the benefit of U.S. Provisional Application No. 60/139,712, filed Jun. 17, 1999.
US Referenced Citations (9)
Non-Patent Literature Citations (2)
Entry |
“Ceramic Phase Shifters for Electronically Steerable Antenna Systems” by Varadan et al., 1992, pps. 5 pages, Microwave Journal, pp. 116-126. |
“Ferroelectric Materials for Phased Array Applications”, IEEE Antennas & Propogation Society International Symposium, vol. 4, pp. 2284-2287, 1997. |
Provisional Applications (1)
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Number |
Date |
Country |
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60/139712 |
Jun 1999 |
US |