Claims
- 1. A nanocomposite dielectric comprising a polymer matrix and a plurality of carbon nanotubes dispersed therein.
- 2. The nanocomposite dielectric of claim 1, wherein said plurality of carbon nanotubes are substantially single walled carbon nanotubes.
- 3. The nanocomposite dielectric of claim 1, wherein said plurality of carbon nanotubes are substantially multi-walled carbon nanotubes.
- 4. The nanocomposite dielectric of claim 1, wherein said plurality of carbon nanotubes are a mixture of single walled and multi-walled nanotubes.
- 5. The nanocomposite dielectric of claim 1, wherein said polymer matrix is selected from the group consisting of epoxy resins, cyanate ester resins, polyimides, silicones, polybutadiene resins, fluoropolymers, urethanes, acrylics, polycarbonate, polypropylene, polyethylene, polyesters and mixtures thereof.
- 6. The nanocomposite dielectric of claim 1, wherein said plurality of carbon nanotubes are oriented parallel to an electric field of the nanocomposite.
- 7. The nanocomposite dielectric of claim 1, wherein a metal coating is deposited on the surface of said nanotubes to increase conductivity of said nanotubes.
- 8. The nanocomposite dielectric of claim 7, wherein said metallic coating is selected from the group consisting of silver, gold, copper, nickel, aluminum and mixtures thereof.
- 9. The nanocomposite dielectric of claim 1, wherein said nanotubes are present at a concentration below a percolation threshold of said nanocomposite dielectric.
- 10. The nanocomposite dielectric of claim 1, wherein said nanotubes are mixed with a conductive filler selected from the group consisting of silver particles, nickel coated graphite, metallic coated glass beads, metallic coated hollow glass or ceramic spheres, copper particles, stainless steel fibers, carbon black, gold particles, aluminum particles and mixtures thereof.
- 11. The nanocomposite dielectric of claim 1, wherein said nanotubes are mixed with inorganic dielectric particles to increase the volume resistivity of said dielectric.
- 12. The nanocomposite dielectric of claim 1, wherein an organic molecule is adsorbed or covalently bonded to a surface of said nanotubes to improve dispersion or increase the volume resistivity of said dielectric.
- 13. The nanocomposite dielectric of claim 1, wherein said dielectric has a volume resistivity greater than about 108 ohm-cm.
- 14. The nanocomposite dielectric of claim 1, wherein said dielectric has a volume resistivity greater than about 1012 ohm-cm.
- 15. The nanocomposite dielectric of claim 1, wherein said dielectric has a dielectric constant greater than about 4.
- 16. The nanocomposite dielectric of claim 1, wherein said dielectric has a dielectric constant greater than about 10.
- 17. The nanocomposite dielectric of claim 1, wherein said dielectric has a dielectric constant greater than about 40.
- 18. The nanocomposite dielectric of claim 1, wherein said dielectric has a dielectric constant greater than about 100.
- 19. The nanocomposite dielectric of claim 1, wherein said dielectric has a dielectric loss less than about 0.05.
- 20. The nanocomposite dielectric of claim 1, wherein said dielectric has a dielectric loss less than about 0.02.
- 21. The nanocomposite of claim 1, wherein said dielectric has a dielectric breakdown strength greater than about 1,000 volts/mil.
- 22. The nanocomposite of claim 1, wherein said dielectric has a dielectric breakdown strength greater than about 15,000 volts/mil.
- 23. The nanocomposite of claim 1, wherein said dielectric has a dielectric breakdown strength greater than about 20,000 volts/mil.
- 24. A high energy density (HED) capacitor comprising a polymer matrix and a plurality of carbon nanotubes substantially dispersed therein.
- 25. The high energy density (HED) capacitor of claim 24, wherein said plurality of carbon nanotubes are substantially single walled carbon nanotubes.
- 26. The high energy density (HED) capacitor of claim 24, wherein said plurality of carbon nanotubes are substantially multi- walled carbon nanotubes.
- 27. The high energy density (HED) capacitor of claim 24, wherein said plurality of carbon nanotubes are a mixture of single walled and multi-walled nanotubes.
- 28. The high energy density (HED) capacitor of claim 24, wherein said polymer matrix is selected from the group consisting of epoxy resins, cyanate ester resins, polyimides, silicones, polybutadiene resins, fluoropolymers, urethanes, acrylics, polycarbonate, polypropylene, polyethylene, polyesters and mixtures thereof.
- 29. The high energy density (HED) capacitor of claim 24, wherein said plurality of carbon nanotubes are oriented parallel to an electric field of the nanocomposite.
- 30. The high energy density (HED) capacitor of claim 24, wherein a metal coating is deposited on the surface of said nanotubes to increase conductivity of said nanotubes.
- 31. The high energy density (HED) capacitor of claim 24, wherein said nanotubes are present at a concentration below a percolation threshold of said nanocomposite dielectric.
- 32. A circuit comprising a high energy density (HED) capacitor of claim 24.
- 33. A method for increasing a dielectric constant of a polymer matrix, comprising dispersing a plurality of carbon nanotubes in said polymer matrix to form a nanocomposite dielectric and measuring the dielectric constant of said nanocomposite dielectric.
- 34. The method of claim 33, wherein said plurality of carbon nanotubes are substantially single walled carbon nanotubes.
- 35. The method of claim 33, wherein said plurality of carbon nanotubes are substantially multi- walled carbon nanotubes.
- 36. The method of claim 33, wherein said plurality of carbon nanotubes are a mixture of single walled and multi-walled nanotubes.
- 37. The method of claim 33, wherein said polymer matrix is selected from the group consisting of epoxy resins, cyanate ester resins, polyimides, silicones, polybutadiene resins, fluoropolymers, urethanes, acrylics, polycarbonate, polypropylene, polyethylene, polyesters and mixtures thereof.
- 38. The method of claim 33, wherein said plurality of carbon nanotubes are oriented parallel to an electric field of the nanocomposite.
- 39. The method of claim 33, wherein a metal coating is deposited on the surface of said nanotubes to increase conductivity of said nanotubes.
- 40. The method of claim 33, wherein said nanotubes are present at a concentration below a percolation threshold of said nanocomposite dielectric.
- 41. A laminate comprising a nanocomposite dielectric of claim 1.
- 42. The laminate of claim 41, wherein a metal layer is bonded to at least one side of the dielectric.
- 43. The laminate of claim 41, wherein said laminate is incorporated into a multilayer circuit structure to form an embedded capacitor.
- 44. The laminate of claim 41, wherein said dielectric is reinforced with glass fabric.
- 45. The laminate of claim 41, wherein said dielectric is greater than about 0.002 mm thick.
- 46. The laminate of claim 41, wherein said metal layer is copper foil.
- 47. A mobile antenna comprising a nanocomposite dielectric of claim 1.
- 48. The mobile antenna of claim 45, wherein a dielectric constant of said dielectric increases as size of said antenna decreases.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The instant application claims the benefit of provisional application 60/296,480 filed Jun. 8, 2001, the disclosure of which is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60296480 |
Jun 2001 |
US |