Claims
- 1. An isomeric thermosetting monomer mixture, comprising a soluble mixture of isomers, wherein the mixture comprises at least one monomer having the structure
- 2. The isomeric thermosetting monomer mixture of claim 1, wherein said Y is selected from the group consisting of adamantane and diamantane.
- 3. The isomeric thermosetting monomer mixture of claim 1, wherein said mixture comprises meta and para isomers.
- 4. A solvent having dissolved therein said isomeric thermosetting monomer mixture of claim 1.
- 5. The solvent of claim 4, wherein the solvent is cyclohexanone.
- 6. A spin-on polymer comprising the isomeric thermosetting monomer mixture of claim 1.
- 7. The spin-on polymer of claim 6, wherein the polymer has a dielectric constant of less than 3.0.
- 8. The spin-on polymer of claim 6, wherein the polymer has a dielectric constant of less than 2.7.
- 9. A thermosetting monomer having the structure
- 10. A spin-on polymer comprising the thermosetting monomer of claim 9.
- 11. A method of producing a low dielectric constant polymer, comprising:
providing an isomeric thermosetting monomer mixture, comprising a soluble mixture of isomers, wherein the mixture comprises at least one monomer having the structure 25wherein Y is selected from a cage compound and a silicon atom, and R1, R2, R3, and R4 are independently selected from an aryl, a branched aryl, and an arylene ether, and wherein at least one of the aryl, the branched aryl, and the arylene ether has an ethynyl group; and polymerizing the thermosetting monomer mixture thereby forming the low dielectric constant polymer, wherein the polymerization comprises a chemical reaction of the ethynyl group.
- 12. The method of claim 11, wherein the Y is selected from the group consisting of an adamantane, and a diamantane.
- 13. The method of claim 1, wherein the aryl comprises a moiety selected from the group consisting of a phenylethynylphenyl, a phenylethynylphenylethynylphenyl, and a phenylethynylphenylphenyl.
- 14. The method of claim 11, wherein the arylene ether comprises a phenylethynylphenyl-phenyl ether.
- 15. The method of claim 11, wherein at least three of the aryl, the branched aryl, and the arylene ether have a ethynyl group, and wherein the polymerization comprises a chemical reaction of the at least three ethynyl groups.
- 16. The method of claim 11, wherein all of the aryl, the branched aryl, and the arylene ether have an ethynyl group, and wherein the polymerization comprises a chemical reaction of all of the ethynyl groups.
- 17. Cancelled.
- 18. The method of claim 11, wherein the polymer comprises a poly(arylene ether).
- 19. The method of claim 11, wherein the step of polymerizing the thermosetting monomer mixture takes place without participation of an additional crosslinking molecule.
- 20. The method of claim 11, wherein said isomeric thermosetting monomer mixture comprises meta and para isomers.
- 21. The method of claim 11, wherein said isomeric thermosetting monomer mixture is dissolved in a solvent.
- 22. A method of producing a spin-on low dielectric constant polymer, comprising:
providing a thermosetting monomer having the structure 26wherein Ar is an aryl, and R′1, R′2, R′3, R′4, R′5, and R′6 are independently selected from an aryl, a branched aryl, an arylene ether, and [nothing] hydrogen and wherein each of the aryl, the branched aryl, and the arylene ether have at least one ethynyl group; and polymerizing the thermosetting monomer thereby forming the low dielectric constant polymer, wherein the polymerization comprises a chemical reaction of the at least one ethynyl group.
- 23. The method of claim 22, wherein the aryl comprises a phenyl group.
- 24. Cancelled.
- 25. The method of claim 22, wherein the step of polymerizing the thermosetting monomer into the polymer takes place without participation of a secondary molecule.
- 26. The method of claim 22, wherein the polymer comprises a poly(arylene ether).
- 27. An electrical device including a dielectric layer comprising a spin-on polymer, wherein the polymer is fabricated from an isomeric monomer mixture having at least one thermosetting monomer from the group comprising:
- 28. The electrical device of claim 27, wherein said thermosetting monomer comprises an isomeric thermosetting monomer mixture.
- 29. The electrical device of claim 28, wherein said isomeric thermosetting monomer mixture comprises meta and para isomers.
- 30. The electrical device of claim 27, wherein said isomeric thermosetting monomer mixture is dissolved in a solvent.
- 31. A spin-on low dielectric constant material, comprising:
a first backbone having a first aromatic moiety and a first reactive group; a second backbone having a second aromatic moiety and a second reactive group, wherein the first and second backbones are crosslinked via the first and second reactive groups in a crosslinking reaction; and a cage structure covalently and pendently bound to at least one of the first and second backbones, wherein the cage structure comprises at least eight atoms.
- 32. The low dielectric constant material of claim 31, wherein the crosslinking reaction takes place without a secondary crosslinker.
- 33. The low dielectric constant material of claim 31, wherein the aromatic moiety comprises a phenyl.
- 34. The low dielectric constant material of claim 31, wherein the aromatic moiety comprises an arylene ether.
- 35. The low dielectric constant material of claim 31, wherein the first backbone comprises a poly(arylene ether).
- 36. The low dielectric constant material of claim 31, wherein the first reactive groups comprises an electrophile.
- 37. The low dielectric constant material of claim 31, wherein the first reactive groups comprises an tetracyclone.
- 38. The low dielectric constant material of claim 31, wherein the second reactive groups comprises a nucleophile.
- 39. The low dielectric constant material of claim 31 wherein the second reactive groups comprises a phenylethynylphenyl group.
- 40. The low dielectric constant material of claim 31, wherein the first and second reactive groups are identical.
- 41. The low dielectric constant material of claim 31, wherein the reaction is a cycloaddition.
- 42. The low dielectric constant material of claim 41, wherein the cycloaddition is a Diels-Alder reaction.
- 43. The low dielectric constant material of claim 31, wherein the cage structure comprises at least one carbon atom.
- 44. The low dielectric constant material of claim 31, wherein at least one of the first reactive group or the second reactive group comprises an ethynyl group.
- 45. The low dielectric constant material of claim 31, wherein the cage structure comprises at least one of an adamantane and a diamantane.
- 46. The low dielectric constant material of claim 31, wherein the cage structure comprises a substituent.
- 47. The low dielectric constant material of claim 31, wherein the substituent is selected from the group consisting of a halogen, an alkyl, and an aryl.
- 48. The low dielectric constant material of claim 31, wherein the cage structure is covalently bound to the first and the second backbone.
- 49. The low dielectric constant material of claim 31, wherein the cage structure is covalently bound to at least one of the termini of the first and the second backbone.
- 50. A spin-on low dielectric constant polymer having the structure:
- 51. A low dielectric constant polymer having the structure:
- 52. A method of producing a low dielectric constant polymer, comprising the steps of:
providing a isomeric mixture of chemical reactants having the structure: 35wherein Y is selected from a cage compound, and R1, R2, R3, and R4 are independently reactive groups; converting the chemical reactant to a thermosetting monomer intermediate; subjecting the thermosetting monomer intermediate to a fresh reagent solution and a fresh catalyst to produce a thermosetting monomer; and polymerizing the thermosetting monomer thereby forming the low dielectric constant polymer, wherein polymerizing comprises a chemical reaction of the reactive group.
- 53. The method of claim 52, wherein the reagent comprises bromobenzene and the catalyst comprises AlBr3 or AlCl3.
- 54. The method of claim 52, wherein the reagent comprises an aromatic or phenyl group and the catalyst is a Lewis Acid
Priority Claims (2)
Number |
Date |
Country |
Kind |
09897936 |
Jul 2001 |
US |
|
09902924 |
Jul 2001 |
US |
|
Parent Case Info
[0001] This application claims priority to following: PCT/US01/11273 filed on Apr. 6, 2001, U.S. Ser. No. 09/897,936 filed Jul. 5, 2001, U.S. Ser. No. 09/902,924 filed Jul. 10, 2001, and PCT/US01/22204 filed on Jul. 13, 2001 which are all incorporated herein by reference. This application is also related to U.S. Ser. No. 09/545,058 filed Apr. 7, 2000 and U.S. Ser. No. 09/618,945 filed Jul. 19, 2000, which are all incorporated herein by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/32569 |
10/18/2001 |
WO |
|