Claims
- 1. A composite material comprising:
a polymer matrix, and a plurality of particles dispersed within the polymer matrix, wherein the polymer matrix has a positive CTE and at least one of the particles has a negative CTE.
- 2. The composite material of claim 1, wherein the plurality of particles are comprised of a plurality of nanoparticles.
- 3. The composite material of claim 1, wherein the composite material has a CTE which is substantially zero.
- 4. The composite material of claim 1, wherein the composite material has a negative CTE.
- 5. The composite material of claim 1, wherein the composite material has a positive CTE.
- 6. The composite material of claim 1, wherein the polymer matrix is a halogenated polymer matrix.
- 7. The composite material of claim 6, wherein the halogenated polymer matrix comprises a material chosen from halogenated elastomers, perhalogenated elastomers, halogenated plastics, and perhalogenated plastics.
- 8. The composite material of claim 6, wherein the halogenated polymer matrix comprises a polymer, a copolymer, or a terpolymer having at least one halogenated monomer represented by one of the following formulas:
- 9. The composite material of claim 1, wherein the halogenated polymer matrix comprises a polymer condensation product of at least one of the following monomeric reactions:
- 10. The composite material of claim 6, wherein the halogenated polymer matrix comprises a material chosen from halogenated cyclic olefin polymers, halogenated cyclic olefin copolymers, halogenated polycyclic polymers, halogenated polyimides, halogenated polyether ether ketones, halogenated epoxy resins, and halogenated polysulfones.
- 11. The composite material of claim 10, wherein the halogenated polymer matrix comprises a combination of two or more different fluoropolymer materials blended together.
- 12. The composite material of claim 6, wherein the halogenated polymer matrix further comprises other halogenated polymers having functional groups chosen from phosphinates, phosphates, carboxylates, silanes, siloxanes, sulfides.
- 13. The composite material of claim 12, wherein the functional groups are chosen from POOH, POSH, PSSH, OH, SO3H, SO3R, SO4R, COOH, NH2, NHR, NR2, CONH2, and NH—NH2, wherein R is chosen from aryls, alkyls, alkylenes, siloxanes, silanes, ethers, polyethers, thioethers, silylenes, and silazanes.
- 14. The composite material of claim 6, wherein the halogenated polymer matrix comprises homopolymers and/or copolymers of vinyl, acrylate, methacrylate, vinyl aromatic, vinyl ester, alpha beta unsaturated acid ester, unsaturated carboxylic acid ester, vinyl chloride, vinylidene chloride, and diene monomers.
- 15. The composite material of claim 1, wherein the polymer matrix comprises at least one polymer selected from the group consisting of hydrogen-containing fluoroelastomers, perfluoroelastomers, hydrogen-containing fluoroplastics, and perfluoroplastics.
- 16. The composite material of claim 1, wherein the polymer matrix comprises at least one polymer selected from the group consisting of poly[2,2-bistrifluoromethyl-4,5-difluoro-1,3-dioxole-co-tetrafluoroethylene], poly[2,2-bisperfluoroalkyl-4,5-difluoro-1,3-dioxole-co-tetrafluoroethylene], poly[2,3-(perfluoroalkenyl)perfluorotetrahydrofuran], poly[2,2,4-trifluoro-5-trifluoromethoxy-1,3-dioxole-co-tetrafluoroethylene], poly(pentafluorostyrene), fluorinated polyimide, fluorinated polymethylmethacrylate, polyfluoroacrylates, polyfluorostyrene, and fluorinated polycarbonates.
- 17. The composite material of claim 1, wherein the polymer matrix comprises a blend of at least two different fluoropolymer materials.
- 18 The composite material of claim 1, wherein the plurality of particles ranges from approximately 10% to about 95% by volume of the composite material.
- 19. The composite material of claim 1, wherein each of the plurality of particles has a negative CTE.
- 20. The composite material of claim 1, wherein at lease one of the particles comprises a material selected from the group consisting of Ni—Ti alloys, ZrW2O8, ZrMo2O8, Y2(WO4)3, V doped ZrP2O7, ZrV2O7, (Zr2O)(PO4)2, Th4(PO4)4P2O7, (ZrO)2VP2O7, ZrVPO7, Zr0.8Li0.2Y0.2VPO7, Zr0.8Ce0.2VPO7, and HfVPO7, and AOMO4, where A=Nb or Ta, and M=P, As, or V.
- 21. The composite material of claim 1, wherein the plurality of particles is uniformly distributed within the matrix.
- 22. The composite material of claim 1, wherein at least one of the plurality of particles comprises one or more rare earth elements.
- 23. The composite material of claim 1, wherein at least one of the plurality of particles comprises a semiconductor compound.
- 24. The composite material of claim 1, wherein each of the plurality of particles comprises a material having an index of refraction between about 1 and about 5.
- 25. The composite material of claim 1, wherein at least one of the plurality of particles comprises a polymer.
- 26. The composite material of claim 1, wherein at least one of the plurality of particles comprises an organic dye.
- 27. The composite material of claim 1, wherein at least one of the plurality of particles comprises a metal.
- 28. The composite material of claim 1, wherein at least one of the plurality of particles comprises an oxide.
- 29. The composite material of claim 1, wherein at least one of the plurality of particles comprises a chalcogenide.
- 30. The composite material of claim 1, wherein each of the plurality of particles has a major dimension of less than about 50 nm.
- 31. The composite material of claim 1, wherein each of the plurality of particles include an outer coating layer.
- 32. The composite material of claim 31, wherein the outer coating layer comprises a halogenated material.
- 33. The composite material of claim 31, wherein the outer coating layer comprises a fluorinated material.
- 34. The composite material of claim 32, wherein the halogenated outer coating layer is formed from at least one compound selected from a group consisting of halogenated silanes, halogenated alcohols, halogenated amines, halogenated carboxylates, halogenated amides, halogenated sulfates, halogenated esters, halogenated acid chloride, halogenated acetylacetonate, halogenated thiols, and halogenated alkylcyanide.
- 35. The composite material of claim 34, wherein the at least one compound is fluorinated.
- 36. The composite material of claim 32, wherein each of the plurality of particles further includes an inner coating disposed beneath the halogenated outer coating layer, wherein the inner coating includes one or more passivation layers.
- 37. The composite material of claim 32, wherein the halogenated outer coating layer comprises a material that reacts with and neutralizes a radical group on at least one of the plurality of particles.
- 38. The composite material of claim 37, wherein the halogenated outer coating layer wherein the radical group comprises OH.
- 39. The composite material of claim 1, wherein at least one of the particles comprises a material corresponding to formula (I) below:
- 40. The composite of claim 39, wherein the material is (ZrO)2VP2O7.
- 41. The composite of claim 39, wherein the material is ZrVPO7.
- 42. The composite of claim 39, wherein the material is Zr0.8Li0.2Y0.2VPO7.
- 43. The composite of claim 39, wherein the material is Zr0.8Ce0.2VPO7.
- 44. The composite of claim 39, wherein the material is HfVPO7.
- 45. The composite material of claim 1, wherein the particles are comprised of ZrW2O8.
- 46. An athermal nanocomposite material comprising:
a halogenated polymer matrix, and a plurality of particles having a negative CTE dispersed within the halogenated polymer matrix, each of the plurality of particles including a halogenated outer coating layer, and further wherein the amount of particles within the matrix is sufficient to result in the polymer matrix exhibiting a CTE of approximately zero.
- 47. A method of forming a composite material having a desired CTE, comprising:
choosing a plurality of particles having a negative CTE, coating each of the particles with an outer layer, and dispersing the plurality of coated particles into a polymer matrix having a positive CTE; wherein the amount of particles and polymer matrix are chosen so as to achieve the desired CTE.
- 48. The method of claim 47, wherein the desired CTE is approximately zero.
- 49. A composite material comprising:
a matrix, and a plurality of particles dispersed within the matrix, wherein the matrix has a positive CTE and at least one of the particles has a negative CTE.
- 50. The composite material of claim 49, wherein the matrix is a polymer.
- 51. The composite material of claim 50, wherein the polymer is a polycarbonate.
- 52. The composite material of claim 49, wherein the CTE of the composite material is approximately zero.
- 53. The composite material of claim 49, wherein the particles are comprised on nanoparticles.
- 54. An optical waveguide comprising:
a substrate; a cladding disposed on the substrate; a core disposed on at least a portion of the cladding, and wherein at least one of the core, the cladding, and the substrate comprise a halogenated polymer having a positive CTE and nanoparticles having a negative CTE.
- 55. The optical waveguide of claim 54, further comprising a superstrate disposed on the cladding, wherein at least one of the core, the cladding, the substrate, and the superstrate comprise a halogenated polymer having a positive CTE and nanoparticles having a negative CTE.
- 56. The optical waveguide of claim 55, wherein at least one of the core, the cladding, the substrate, and the superstrate has a CTE which is substantially zero.
- 57. The optical waveguide of claim 54, wherein at least one of the core, the cladding, and the substrate has a negative CTE.
- 58. The optical waveguide of claim 54, wherein at least one of the core, the cladding, and the substrate has a positive CTE.
- 59. The optical waveguide of claim 54, wherein the core and the cladding further comprise nanoparticles having a refractive index different than a refractive index of the halogenated polymer.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims priority from U.S. Provisional Patent Application Nos. 60/357,958 and 60/357,963 both filed on Feb. 19, 2002, and herein incorporated by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60357958 |
Feb 2002 |
US |
|
60357963 |
Feb 2002 |
US |