Claims
- 1. A composition of matter having a vitrification temperature (Tv-comp) comprising:
a b-staged thermosetting resin having a vitrification temperature (Tv-resin); a pore generating material; and a reactive additive that is capable of lowering the Tv-comp below that of the Tv-resin, said reactive additive is selected to increase compatibility of the pore generating material in the composition.
- 2. The composition of matter of claim 1 wherein said resin comprises functionality that is reactive with said reactive additive.
- 3. The composition of matter of claim 1 wherein said pore generating material is functionally attached to said resin.
- 4. The composition of matter of claim 1 wherein said pore generating material is substantially dispersed within said resin.
- 5. The composition of matter of claim 1 wherein said reactive additive comprises functionality that becomes chemically incorporated into said resin upon vitrification producing a structure that has sufficient mechanical strength to withstand capillary collapsing forces produced upon decomposition of said pore generating material.
- 6. The composition of matter of claim 1 wherein said pore generating material is thermally labile.
- 7. The composition of matter of claim 1 wherein said pore generating material is polystyrene nanoparticles.
- 8. The composition of matter of claim 1 wherein said reactive additive plasticizes said resin thereby lowering the glass transition temperature of said composition and allowing vitrification to proceed at lower temperatures.
- 9. The composition of matter of claim 1 wherein said reactive additive allows, during curing of said composition of matter, the glass transition of said composition of matter to advance above the curing temperature.
- 10. The composition of matter of claim 1 wherein said reactive additive is selected from the group consisting of
- 11. The composition of matter of claim 10 wherein said reactive additive is TRIS A, TRIS 2 or TRIS P.
- 12. The composition of matter of claim 1 wherein said b-staged thermosetting resin is a Diels Alder reaction product between a polyfunctional cyclopentadienone and a poly functional acetylene.
- 13. The composition of matter of claim 1 wherein said b-staged thermosetting resin comprises a polyarylene resin.
- 14. The composition of matter of claim 1 further comprising a solvent.
- 15. The composition of matter of claim 1 comprising from about 20 to about 91 wt. % of said b-staged thermosetting resin, from about 5 to about 50 wt. % of said pore generating material; and from about 4 to about 60 wt. % of said reactive additive, based on 100 percent dry weight of the total composition.
- 16. The composition of matter of claim 1 wherein said reactive additive is selected to increase the foaming efficiency for a nucleation and growth process or a particle template process as compared to a composition not including the reactive additive.
- 17. The composition of matter of claim 1 wherein said b-staged thermosetting resin comprises cyclopentadienone functional compounds and acetylene functional aromatic compounds and/or partially polymerized reaction products of said compounds.
- 18. The composition of matter of claim 1 wherein said reactive additive is selected so as to increase the crosslinking density of the resin as compared to a composition not including the reactive additive.
- 19. The composition of matter of claim 1 wherein the reactive additive serves as a compatiblizer between the b-staged thermosetting resin and the pore generating material causing phase separation to be delayed in nucleation and growth systems, while preventing agglomeration in a particle template approach.
- 20. The composition of matter of claim 1 wherein vitrification occurs below the pore generating material's thermal decomposition temperature
- 21. A composition of matter having a vitrification temperature (Tv-comp) comprising:
a b-staged thermosetting resin having a vitrification temperature (Tv-resin); a pore generating material; and a reactive additive that is capable of lowing the Tv-comp below that of the Tv-resin.
- 22. The composition of matter of claim 21 wherein said resin comprises functionality that is reactive with said reactive additive.
- 23. The composition of matter of claim 21 wherein said reactive additive comprises functionality that becomes chemically incorporated into said resin upon vitrification producing a structure that has sufficient mechanical strength to withstand capillary collapsing forces produced upon decomposition of said pore generating material.
- 24. The composition of matter of claim 21 wherein said reactive additive plasticizes said resin thereby lowering the glass transition temperature of said composition and allowing vitrification to proceed at lower temperatures.
- 25. The composition of matter of claim 21 wherein said reactive additive allows, during curing of said composition of matter, the glass transition of said composition of matter to advance above the curing temperature.
- 26. The composition of matter of claim 21 wherein said reactive additive is selected from the group consisting of
- 27. A composition of matter having a vitrification temperature (Tv-comp) comprising:
a b-staged thermosetting resin having a vitrification temperature (Tv-resin); a pore generating material; and a reactive additive that is selected to increase compatibility of the pore generating material in the composition.
- 28. The composition of matter of claim 27 wherein said resin comprises functionality that is reactive with said reactive additive.
- 29. The composition of matter of claim 27 wherein said reactive additive comprises functionality that becomes chemically incorporated into said resin upon vitrification producing a structure that has sufficient mechanical strength to withstand capillary collapsing forces produced upon decomposition of said pore generating material.
- 30. The composition of matter of claim 27 wherein said reactive additive plasticizes said resin thereby lowering the glass transition temperature of said composition and allowing vitrification to proceed at lower temperatures.
- 31. The composition of matter of claim 27 wherein said reactive additive allows, during curing of said composition of matter, the glass transition of said composition of matter to advance above the curing temperature.
- 32. The composition of mater of claim 27 wherein said reactive additive is selected from the group consisting of
- 33. A method of forming a porous material comprising:
applying a composition of matter having a vitrification temperature (Tv-comp) onto a surface of a substrate, said composition of matter comprising a b-staged thermosetting resin having a vitrification temperature (Tv-resin), a pore generating material, and a reactive additive selected to lower the Tv-comp below that of the Tv-resin; heating the composition of matter to vitrify the resin and the reactive additive; and decomposing the pore generating material providing a porous layer of cured material on the surface of the substrate.
- 34. The method of claim 33 wherein said decomposing comprises heating.
- 35. The method of claim 33 wherein said decomposing comprises radiation treatment.
- 36. The method of claim 33 wherein said composition of matter further comprises a solvent.
- 37. The method of claim 33 wherein said reactive additive is selected to increase solubility of said pore generating material
- 38. An interconnect structure comprising at least a porous low-k dielectric material which comprises the vitrified and decomposed composition of matter of claim 1.
- 39. The interconnect structure of claim 38 wherein said porous low-k dielectric material has stable and nano-sized pores.
- 40. The interconnect structure of claim 38 wherein said porous low-k dielectric has a dielectric constant of less than about 3.9.
- 41. The interconnect structure of claim 38 further comprising an underlying substrate selected from the group consisting of a semiconducting material, an insulating material, a conductive material, and multilayers thereof.
RELATED APPLICATION
[0001] This application is a continuation-in-part of, and claims priority to, U.S. application Ser. No. 10/334,438, filed Dec. 31, 2002, which is hereby incorporated by reference in its entirety.
[0002] This application is related to co-assigned U.S. application Ser. No. 10/334,413, which was filed concurrently with U.S. application Ser. No. 10/334,438.
Government Interests
[0003] 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 Cooperative Agreement No. 70NANB8H4013 awarded by NIST (Advanced Technology Program).
[0004] This invention was made with the U.S. Government support under the above-referenced Cooperative Agreement awarded by NIST. The U.S. Government has certain rights in this invention.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10334438 |
Dec 2002 |
US |
Child |
10827694 |
Apr 2004 |
US |