Claims
- 1. A voltage tunable dielectric varactor comprising:
a substrate having a first dielectric constant and having generally a planar surface; a tunable ferroelectric layer positioned on the generally planar surface of the substrate, the tunable ferroelectric layer having a second dielectric constant greater than said first dielectric constant; and first and second electrodes positioned on a surface of the tunable ferroelectric layer opposite the generally planar surface of the substrate, said first and second electrodes being separated to form a gap therebetween.
- 2. A voltage tunable dielectric varactor as recited in claim 1, further comprising:
an insulating material in said gap.
- 3. A voltage tunable dielectric varactor as recited in claim 1, wherein the tunable ferroelectric layer has a permittivity greater than about 100.
- 4. A voltage tunable dielectric varactor as recited in claim 1, wherein the substrate has a permittivity of less than about 30.
- 5. A voltage tunable dielectric varactor as recited in claim 1, wherein the tunable ferroelectric layer has a permittivity in a range from about 20 to about 2000, and a tunability in a range from about 10% to about 80% at a bias voltage of about 10 V/μm.
- 6. A voltage tunable dielectric varactor as recited in claim 1, wherein the substrate comprises one of the group of: MgO, Alumina, LaAlO3, sapphire, and a ceramic.
- 7. A voltage tunable dielectric varactor as recited in claim 1, wherein the tunable ferroelectric layer comprises one of:
a tunable ferroelectric thick film; a tunable ferroelectric bulk ceramic; and a tunable ferroelectric thin film.
- 8. A voltage tunable dielectric varactor as recited in claim 1, wherein the tunable ferroelectric includes an RF input and an RF output for passing an RF signal through the tunable ferroelectric layer in a first direction, and wherein the gap extends in a second direction substantially perpendicular to the first direction.
- 9. A reflective termination phase shifter comprising:
a rat race coupler having an RF input and an RF output; first and second stubs positioned on said rat race coupler; a first reflective termination positioned adjacent to an end of said first stub; and a second reflective termination positioned adjacent to an end of said second stub; wherein each of said first reflective termination and said second reflective termination includes a tunable varactor comprising a substrate having a first dielectric constant and having generally planar surface, a tunable ferroelectric layer positioned on the generally planar surface of the substrate, the tunable ferroelectric layer having a second dielectric constant greater than said first dielectric constant, and first and second electrodes positioned on a surface of the tunable ferroelectric layer opposite the generally planar surface of the substrate, said first and second electrodes being separated to form a gap therebetween.
- 10. A reflective phase shifter as recited in claim 9, wherein the tunable ferroelectric layer has a permittivity greater than about 100.
- 11. A reflective termination phase shifter as recited in claim 9, wherein the substrate has a permittivity of less than about 30.
- 12. A reflective termination phase shifter as recited in claim 9, wherein each of said first reflective termination and said second reflective termination further includes and inductor electrically connected in series with said varactor.
- 13. A reflective termination phase shifter as recited in claim 9, further comprising:
first and second DC blocks, said first DC block being positioned in said RF input, and said second DC block being positioned in said RF output.
- 14. A loaded line phase shifter comprising:
a microstrip having an RF input and an RF output; first and second radial stubs extending from said microstrip; a first varactor positioned within said first radial stub; and a second varactor positioned within said second radial stub; wherein each of said first varactor and said second varactor is comprises a substrate having a first dielectric constant and having generally planar surface, a tunable ferroelectric layer positioned on the generally planar surface of the substrate, the tunable ferroelectric layer having a second dielectric constant greater than said first dielectric constant, and first and second electrodes positioned on a surface of the tunable ferroelectric layer opposite the generally planar surface of the substrate, said first and second electrodes being separated to form a gap therebetween.
- 15. A loaded line phase shifter as recited in claim 14, wherein the tunable ferroelectric layer has a permittivity greater than about 100.
- 16. A loaded line phase shifter as recited in claim 14, wherein the substrate has a permittivity of less than about 30.
- 17. A tunable fin line filter comprising:
a rectangular waveguide; three conductive plates positioned along a longitudinal axis of the waveguide, wherein one of said conductive plates is insulated from said waveguide; two lateral plates having shorted end fin line resonators and being grounded to the waveguide; and plurality of varactors, one of said varactors being electrically coupled to each of fin-line resonator; wherein the tunable varactor includes a substrate having a first dielectric constant and having generally planar surface, a tunable ferroelectric layer positioned on the generally planar surface of the substrate, the tunable ferroelectric layer having a second dielectric constant greater than said first dielectric constant, and first and second electrodes positioned on a surface of the tunable ferroelectric layer opposite the generally planar surface of the substrate, said first and second electrodes being separated to form a gap therebetween.
- 18. A tunable fin line filter as recited in claim 17, wherein the tunable ferroelectric layer has a permittivity greater than about 100.
- 19. A tunable fin line filter as recited in claim 17, wherein the substrate has a permittivity of less than about 30.
CROSS REFERENCE TO RELATED PATENT APPLICATION
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/104,504, filed Oct. 16, 1998.
Provisional Applications (1)
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Number |
Date |
Country |
|
60104504 |
Oct 1998 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09419126 |
Oct 1999 |
US |
Child |
10223745 |
Aug 2002 |
US |