Claims
- 1. An impedance matching circuit comprising:
a conductor line having an input port and an output port; a ground conductor; a tunable dielectric material positioned between a first section of said conductor line and said ground conductor; a non-tunable dielectric material positioned between a second section of said conductor line and said ground conductor; and means for applying a DC voltage between said conductor line and said ground conductor.
- 2. The impedance matching circuit of claim 1, wherein:
the conductor line comprises a conducting strip line; the ground conductor comprises a ground plane; and said conducting strip, tunable dielectric or non-tunable dielectric and ground plane together form a microstrip transmission line.
- 3. The impedance matching circuit of claim 2, wherein:
the microstrip line has a first section deposited on the said tunable dielectric; the microstrip line has a second section deposited on a non-tunable dielectric; and the first and second microstrip sections are connected in series to form a tunable microstrip impedance transformer with an entry point that abuts the non-tunable dielectric substrate and an exit point that abuts the tunable dielectric substrate.
- 4. The impedance matching circuit of claim 3, wherein:
multiple pairs of microstrip sections are functionally interposed between said first microstrip section and said exit point of the tunable microstrip impedance transformer; each of said pair of microstrip sections comprise of a microstrip section on a tunable dielectric, which is connected in series with a microstrip section on a non-tunable dielectric; the pairs of microstrip sections together with the said first and said second section microstrip sections are connected in series to form a cascaded network where every other section is tunable with non-tunable sections in between.
- 5. The impedance matching circuit of claim 1, wherein:
the conductor line comprises a conducting strip; the ground conductor comprises a first ground plane and a second ground plane; the first ground plane, the second ground plane, the conducting strip, the tunable dielectric material, and the non-tunable dielectric material forming a stripline transmission line; the stripline including a first section containing said tunable dielectric material and a second section containing said non-tunable dielectric material; the first and second stripline sections being connected in series to form a tunable stripline impedance transformer with an entry point that abuts the non-tunable dielectric material and an exit point that abuts the tunable dielectric material.
- 6. The impedance matching circuit of claim 5, wherein:
the conductor line is a center conductor; the ground conductor is a cylindrical outer ground conductor; a first portion of the center conductor is imbedded in the tunable dielectric material; a second portion of the center conductor is imbedded in the non-tunable dielectric material; the center conductor is coaxially aligned with the said cylindrical outer ground conductor to form a co-axial transmission line; the co-axial transmission line has a first section containing the said tunable dielectric; the co-axial transmission line has a second section containing the said non-tunable dielectric; the first and second co-axial transmission line sections are connected in series to form a tunable co-axial transmission line impedance transformer with an entry point that abuts the non-tunable dielectric substrate and an exit point that abuts the tunable dielectric substrate.
- 7. The impedance matching circuit of claim 5, wherein:
multiple pairs of co-axial transmission line sections are functionally interposed between said first co-axial transmission line section and said exit point of the tunable co-axial transmission line impedance transformer; each of said pair of co-axial transmission line sections comprise a portion of the center conductor in the tunable dielectric material, which is connected in series with a portion of the center conductor in the non-tunable dielectric material; the pairs of co-axial transmission line sections together with the said first and said second section transmission line sections are connected in series to form a cascaded network where every other section is tunable with non-tunable sections in between.
- 8. The impedance matching circuit of claim 1, wherein:
multiple pairs of stripline sections are functionally interposed between said first stripline section and said exit point of the tunable stripline impedance transformer; each said pair of stripline sections comprise of a microstrip section on a tunable dielectric, which is connected in series with a microstrip section on a non-tunable dielectric; the said pairs of stripline sections together with the said first and said second section microstrip sections are connected in series to form a cascaded network where every other section is tunable with non-tunable sections in between.
- 9. The impedance matching circuit of claim 1, wherein:
the tunable dielectric material comprises a barium strontium titanate composite.
- 10. The impedance matching circuit of claim 1, further comprising:
means for blocking a microwave signal propagating along said conductor line from leaking into an external DC voltage supply circuit.
- 11. The impedance matching circuit of claim 1, further comprising:
a multi-stage impedance circuit functionally interposed between said conductor line and the input port, wherein said multi-stage impedance matching circuit reduces the signal reflection of a microwave signal propagating through the said tunable impedance matching circuit into a load, by matching the wave impedance of said microwave signal at the input port to the microwave source impedance.
- 12. An impedance matching circuit comprising:
a first planar conductor; a second planar conductor; means for applying a DC voltage from a DC voltage supply circuit between said first planar conductor and said second planar conductor; a non-tunable dielectric material supporting the first and second planar conductors in the same plane; a gap between said first and second planar conductors forming a slotline transmission line; a plurality of tunable dielectric layer sections, each possessing a dielectric constant that can be varied by applying a DC electric field, the tunable dielectric layer sections being interposed between the said co-planar conductors and the non-tunable dielectric material so as to bridge the gap between the first and second planar conductors at a plurality of locations, leaving non-bridged sections in between, wherein the plurality of alternating bridged and non-bridged slotline sections form a tunable impedance transformer circuit with an entry point and an exit point; the said tunable impedance transformer circuit matching a constant microwave source impedance connected at the said entry point to a varying load impedance connected at the said exit point, thereby reducing signal reflections between the microwave source and the varying load impedance.
- 13. The impedance matching circuit of claim 12, wherein:
the first and second planar conductors are connected to opposite walls of the waveguide to form a finline tunable impedance transformer circuit.
- 14. The impedance matching circuits of claim 12, wherein:
the non-bridged sections are bridged by a second tunable dielectric layer.
- 15. The impedance matching circuits of claim 12, wherein:
the bridged sections have narrowed slot gaps compared to the said non-bridged sections.
- 16. The impedance matching circuits of claim 12, wherein:
the tunable dielectric layer sections comprise a tunable dielectric layer of graduated tunability.
- 17. An impedance matching circuit comprising:
a first planar ground conductor; a second planar ground conductor; a strip conductor having an input port and an output port, and positioned between the first and second planar ground conductors to define first and second gaps, the first gap being positioned between the strip conductor and the first planar ground conductor and the second gap being positioned between the strip conductor and the second planar ground conductor; a non-tunable dielectric material supporting the first and second planar ground conductors and the strip conductor in the same plane; means for applying a DC voltage between the strip conductor and the first and second planar ground conductors; and a plurality of tunable dielectric layer sections positioned between the strip conductor and the first and second planar ground conductors so as to bridge the gaps between the said first and second planar ground conductors and the strip conductor at a plurality of locations, leaving non-bridged sections in between, defining a plurality of alternating bridged and non-bridged co-planar waveguide sections.
- 18. The impedance matching circuit of claim 17, wherein:
the said non-bridged sections are bridged by a second tunable dielectric layer.
- 19. The impedance matching circuit of claim 17, wherein:
the first and second gaps are narrowed adjacent to said bridged sections.
- 20. The impedance matching circuits of claim 17, wherein:
the first tunable dielectric layer and the second tunable dielectric layer comprise a tunable dielectric layer of graduated tunability.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/219,500, filed Jul. 20, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60219500 |
Jul 2000 |
US |