Claims
- 1. A capacitor comprising:
- a plurality of submicron thick layers of a conductive material;
- said layers of conductive material being continuously tapered in cross-section along a length thereof;
- a plurality of layers of a dielectric material;
- one of said layers of dielectric material being intermediate adjacent layers of said conductive material;
- said layers of dielectric material being interconnected; and
- conductive terminals operatively connected to said layers of conductive material.
- 2. The capacitor of claim 1, wherein said plurality of layers of dielectric material are interconnected so as to form a continuous serpentine dielectric barrier between said plurality of layers of conductive material.
- 3. The capacitor of claim 1, wherein said plurality of layers of conductive material are interleaved with at least one of said interleaved layers of conductive material being connected to one of a plurality of said conductive terminals.
- 4. The capacitor of claim 1, wherein each of said plurality of layers of conductive material is composed of a plurality of sub-layers of conductive material operatively connected to a conductive terminal.
- 5. The capacitor of claim 1, wherein certain of said plurality of layers of conductive material are connected to one of said conductive terminals, wherein certain of said plurality of layers of conductive material are connected to another of said conductive terminals, wherein said plurality of layers of conductive material connected to said conductive terminals are interleaved, spaced from one another, and spaced from an opposite conductive terminal, and wherein said plurality of layers of dielectric material are interconnected to form a continuous serpentine dielectric barrier between said plurality of layers of conductive material and between said layers of conductive material and said opposite conductive terminals.
- 6. The capacitor of claim 1, wherein said plurality of layers of conductive material comprises at least two such layers attached to each of said conductive terminals so as to define two sets of interleaved conductive layers, with terminal ends of said layers of one set being in spaced relation to the conductive terminal of another set, and wherein said plurality of layers of dielectric material extend between said interleaved conductive layers and are interconnected at the space formed intermediate said terminals ends of said conductive layers and said conductive terminal.
- 7. The capacitor of claim 1, wherein said conductive material is selected from the group consisting of copper, aluminum, zirconium, and titanium, and wherein the dielectric material is selected from the group consisting of silicon dioxide, titanium dioxide, calcium titanate, zirconium dioxide, barium titanate.
- 8. The capacitor of claim 1, wherein each of said layers of conductive material is integral with a conductive terminal.
- 9. The capacitor of claim 1, wherein one end of said layer of conductive material has a cross-section of about one-half the cross-section of another end of said layer.
- 10. The capacitor of claim 9, wherein said conductive material is copper, and wherein said one end of said tapering cross-section has a thickness of about 0.1 .mu.m.
- 11. The capacitor of claim 10, wherein said dielectric material is silicon dioxide, and wherein said layers of dielectric material have a cross-sectional distance of about 3.7 .mu.m.
- 12. The capacitor of claim 11, wherein said terminal 5 are constructed of copper and have a width of about 1 mm.
- 13. The capacitor of claim 12, wherein said another end of each said tapering cross-section layers of conductive material is integral with a conductive terminal and has a thickness of about 0.2 .mu.m.
- 14. The capacitor of claim 13, wherein each of said layers of conductive material has one end which terminates in spaced relation to another of said conductive terminals.
- 15. The capacitor of claim 14, wherein said one end of said layers of conductive material is spaced about 100 .mu.m from an adjacent conductive material.
- 16. The capacitor of claim 15, electrically connected to a plurality of similarly constructed capacitors to form a bank of such capacitors.
- 17. A nano-structure multilayer capacitor comprising:
- a plurality of conductors having one end thereof electrically connected to one of at least two conductive tabs, each of said conductors having a continuously tapering cross-section along a length thereof; and
- a plurality of interconnected dielectric layers, each of said dielectric layers being at least partially located between adjacent conductors and between a second end of said conductors and said conductive tabs.
- 18. The multilayer capacitor of claim 17, wherein said second end of each of said conductors is of a lesser cross-section than said one end of said conductors.
- 19. The multilayer capacitor of claim 17, wherein alternate conductors extend from alternate conductive tabs, such that space between said alternate conductors is remained substantially constant along a length of said conductors.
- 20. The multilayer capacitor of claim 17, wherein said conductors and said dielectric layers are formed in a configuration of a notepad having a length, width and thickness, and include from about 10 to several thousand alternating layers of conductors and dielectric material and with an overall thickness of about 1 mm.
Government Interests
The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.
US Referenced Citations (15)
Foreign Referenced Citations (4)
Number |
Date |
Country |
3024711 |
Feb 1991 |
JPX |
3200308 |
Sep 1991 |
JPX |
3200309 |
Sep 1991 |
JPX |
2231201 |
Nov 1990 |
GBX |