Claims
- 1. An RF coil for magnetic resonance spectroscopy or microscopy comprising a conductive material comprising a capacitive element and an inductive element, wherein the inductive element comprises an interior loop comprising two interior fingers of width w and two exterior loops, each exterior loop comprising two exterior fingers of width about w/2 and the fingers are proximately disposed whereby a capacitive element is formed between adjacent pairs of fingers.
- 2. The coil of claim 1 wherein the conductive material is deposited on a substrate.
- 3. The coil of claim 1 wherein the conductive material is a superconductor.
- 4. The coil of claim 2 wherein the superconductor is a high temperature superconductor.
- 5. The capacitor of claim 1 wherein at least one said finger is of reduced length compared to an adjacent finger.
- 6. The coil of claim 1 wherein the interior fingers are tapered.
- 7. The coil of claim 2 wherein the interior fingers are tapered.
- 8. The coil of claim 3 wherein the interior fingers are tapered.
- 9. A capacitor for use with an inductor in an RF coil comprising a first elongate tapered finger, and a second elongate tapered finger, each finger having a wide end and a narrow end; the wide end of the first finger being proximately disposed to the narrow end of the second finger and the narrow the end of the first finger being proximately disposed to the wide end of the second finger, adjacent fingers forming a uniform gap therebetween, whereby a capacitive element is formed between the first and the second finger.
- 10. The capacitor of claim 9 wherein at least one said finger of one set is of reduced length compared to an adjacent finger.
- 11. A capacitor for use with an inductive resonator of a magnetic resonance apparatus, comprising:
- (a) a first set of elongate conducting fingers numbering at least one finger, each finger of the first set having a first terminal and a second terminal and each finger being essentially monotonically tapered from its first terminal to its second terminal;
- (b) a second set of elongate conductive fingers numbering at least one finger, each finger having a first terminal and a second terminal, said second set disposed interdigitated with said first set whereby the first terminals of the first set lie proximal the second terminals of the second set and adjacent fingers define a gap of substantially uniform width therebetween.
- 12. The capacitor of claim 11 wherein the conductive material is a superconductor.
- 13. The capacitor of claim 12 wherein the superconductor is a high temperature superconductor.
- 14. A resonant circuit comprising:
- (a) a substrate comprising a dielectric material,
- (b) a layer of a conductive material deposited on said substrate, said conductive layer being patterned to form a resonant element comprising an inductive element and a capacitive element wherein,
- i) said inductive element comprises a plurality of elongate fingers, said fingers forming an essentially closed loop having an innermost turn and an outermost turn and at least one interior turn therebetween, said fingers being proximately disposed to each other and each said two fingers separated by a gap; and
- ii) said capacitive element is formed between adjacent pairs of fingers; and
- wherein said innermost, said outermost and said interior turn each has a width and said width of said innermost or outermost turn is about one-half said width of said interior turn.
- 15. The coil of claim 14 wherein the conductive material is a superconductor.
- 16. A capacitive element for a magnetic resonance coil comprising:
- (a) a first elongate finger of a conductive material, the first finger being slit over most, but less than all, of the length thereof into at least two fingerlets defining between the at least two fingerlets a first gap; and
- (b) a second elongate finger of a conductive material, the first finger being proximately disposed to the second finger whereby a second gap is of essentially uniform width is defined between the first finger and the second finger, whereby a capacitive element is formed between the first finger and the second finger.
- 17. The coil of claim 16, wherein the conductive material is a superconductor.
- 18. A resonant circuit comprising a conductive material comprising the capacitive element of claim 16 and an inductive element, wherein the inductive element comprises the first finger and the first finger is in the form of a loop.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 08/409,506 by Richard S. Withers filed Mar. 23, 1995, and a continuation-in-part of U.S. patent application Ser. No. 08/313,624 by Richard S. Withers, Guo-Chun Liang and Marie Johansson filed Sep. 27, 1994 now abandoned, which is a continuation-in-part of Ser. No. 891,591, now U.S. Pat. No. 5,351,007 by Richard S. Withers and Guo-Chun Liang filed Jun. 1, 1992, each of which is incorporated herein by reference.
STATEMENT OF GOVERNMENT INTEREST
The U.S. Government has a paid-up license in this invention and the right in limited circumstances to require the patent owner to license others on reasonable terms as provided for by the terms of Grant No. 2B44RR09751 awarded by the National Institutes of Health.
US Referenced Citations (20)
Foreign Referenced Citations (1)
Number |
Date |
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WO9405022 |
Mar 1994 |
WOX |
Non-Patent Literature Citations (3)
Entry |
Gupta, et al., Computer-Aided Design of Microwave Circuits, ARTECH House, Inc. 217-220 (1981). |
Banson, et al., "A probe for specimen magnetic resonance microscopy" (Feb. 1992). Investigative Radiology27:157-164. |
Black, et al., "A high-temperature superconducting receiver for nuclear magnetic resonance microscopy" (Feb. 5 1993) Science259:793-795. |
Related Publications (1)
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313624 |
Sep 1994 |
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Continuation in Parts (2)
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409506 |
Mar 1995 |
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891591 |
Jun 1992 |
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