Claims
- 1. A block copolymer ionomer comprising:
a block of polyisobutylene, and; at least one ionomeric block connected to the block of polyisobutylene.
- 2. The block copolymer ionomer according to claim 1 wherein the at least one ionomeric block comprises an anionomer.
- 3. The block copolymer ionomer according to claim 2 wherein the anionomer comprises an acrylic acid salt.
- 4. The block copolymer ionomer according to claim 3 wherein the methacrylic acid salt comprises a poly(methacrylic acid) salt.
- 5. The block copolymer ionomer according to claim 4 wherein the block copolymer ionomer is a polyisobutylene-block-poly(methacrylic acid) salt.
- 6. The block copolymer ionomer according to claim 4 wherein the block copolymer ionomer is poly(methylmethacrylic acid) salt-block-polyisobutylene-block-poly(methylmethacrylic acid) salt.
- 7. An inverse micelle comprising:
a plurality of block copolymer ionomers in a hydrocarbon solvent, the block copolymer ionomers having a polyisobutylene block, and; at least one ionomeric block, wherein the plurality of copolymer ionomer chains spontaneously aggregate such that the charged ionomeric monomers and their counterions form a loosely grouped ionic aggregate, and the polyisobutylene chains extend outward into the hydrocarbon solvent.
- 8. An endless ionomer network comprising:
a plurality of star polymer ionomers in a hydrocarbon solvent, the star polymer ionomers comprising a core, and; at least three block copolymer ionomer arms, each arm comprising a diblock copolymer ionomer, wherein the plurality of copolymer ionomer chains spontaneously aggregate such that the charged ionomeric monomers and their counterions form a plurality of loosely grouped ionic aggregates, each aggregate having one or more polyisobutylene chains extending outward into the hydrocarbon solvent, and terminating in another such ionic aggregate, and wherein at least some of the polyisobutylene chains terminate in an aromatic group, which resides within the length of another polyisobutylene chain spanning two ionic aggregates.
- 9. An endless ionomer network comprising:
a plurality of tri-block copolymer ionomers in a hydrocarbon solvent, the tri-block copolymer ionomers having a polyisobutylene block, and; at least two ionomeric blocks, wherein the plurality of copolymer ionomer chains spontaneously aggregate such that the charged ionomeric monomers and their counterions form a plurality of loosely grouped ionic aggregates, each aggregate having one or more polyisobutylene chains extending outward into the hydrocarbon solvent, and terminating in another such ionic aggregate.
- 10. A star polymer comprising:
a core, and; at least one arm; wherein the at least one arm comprises a block of polyisobutylene and a block of an anionomer.
- 11. The star polymer according to claim 10 wherein the anionomer is an acrylic acid salt.
- 12. The star polymer according to claim 11 wherein the acrylic acid salt is a poly (methacrylic acid) salt.
- 13. The star polymer according to claim 10 wherein the star polymer has from 3 to 16 arms.
- 14. The star polymer according to claim 13 wherein each arm comprises from about 75 mol % to about 95 mol % polyisobutylene and from about 25 mol % to about 5 mol % poly (methacrylic acid) salt.
- 15. The block copolymer ionomer according to claim 1 wherein the ionomeric block comprises cationomers.
- 16. The block copolymer ionomer according to claim 15 wherein the cationomers comprise tertiary amines.
- 17. The block copolymer ionomer according to claim 16 wherein the tertiary amines comprise quaternized poly (2-dimethylamino ethyl methacrylate).
- 18. The block copolymer ionomer according to claim 17 wherein the block copolymer ionomer is polyisobutylene-block-quaternized poly (2-dimethylamino ethyl methacrylate).
- 19. The block copolymer ionomer according to claim 18 wherein the block copolymer ionomer is quaternized poly (2-dimethylamino ethyl methacrylate)-block-polyisobutylene-block-quaternized poly (2-dimethylamino ethyl methacrylate).
- 20. A star polymer comprising:
a core, and; at least one arm; wherein the at least one arm comprises a block of polyisobutylene and a block of a cationomer connected to the block of polyisobutylene.
- 21. The block copolymer ionomer according to claim 20 wherein the cationomers comprise amines.
- 22. The block copolymer ionomer according to claim 21 wherein the amines comprise quaternized poly (2-dimethylamino ethyl methacrylate).
- 23. The star polymer according to claim 20 having from 3 to 16 arms.
- 24. The star polymer according to claim 23 wherein each arm comprises about 75 mol % to about 95 mol % polyisobutylene and from about 25 mol % to about 5 mol % quaternized poly (2-dimethylamino ethyl methacrylate).
- 25. A process of synthesizing a block copolymer anionomer comprising:
providing a polyisobutylene macroinitiator having a terminus capable of mediating atom transfer radical polymerization; solubilizing, in a solvent suitable for conducting atom transfer radical polymerization, said polyisobutylene macroinitiator and a plurality of anionogenic monomers; atom transfer radical polymerizing said polyisobutylene macroinitiator with said plurality of anionogenic monomers in said solvent to form a block copolymer anionomer precursor having at least one polyisobutylene block formed from the polyisobutylene macroinitiator, and one anionogenic block, connected to the polyisobutylene block, and; hydrolysis of said anionogenic block to form a block copolymer anionomer.
- 26. The process according to claim 25 wherein said macroinitiator comprises polyisobutylene-2-bromoisobutyryl bromide.
- 27. The process according to claim 25 wherein said anionogenic block is a polyacrylic acid.
- 28. The process according to claim 27 wherein said polyacrylic acid is poly (tert-butyl methacrylic acid).
- 29. The process according to claim 25 wherein the polyisobutylene macroinitiator evolves from an hydroxyl-endcapped polyisobutylene formed by:
solubilizing, in a solvent system suitable for conducting living cationic polymerization, a plurality of isobutylene monomers, and a core selected from the group consisting of a cumyl group, and a dicumyl group; initiating living cationic polymerization of said core and said isobutylene monomers to form a polyisobutylene block copolymer; terminating said living cationic polymerization by allylating said polyisobutylene block copolymer to form an allyl-endcapped polyisobutylene block copolymer, and; hydroborating and oxidizing said allyl-endcapped polyisobutylene block copolymer to form a hydroxyl endcapped polyisobutylene block copolymer.
- 30. A process of synthesizing a block copolymer cationomer comprising:
providing a polyisobutylene macroinitiator having a terminus capable of mediating atom transfer radical polymerization; solubilizing, in a solvent suitable for conducting atom transfer radical polymerization, said polyisobutylene macroinitiator and a plurality of cationogenic monomers; atom transfer radical polymerizing said polyisobutylene macroinitiator with said plurality of cationogenic monomers in said solvent to form a star block copolymer cationomer precursor having at least one polyisobutylene block formed from the polyisobutylene macroinitiator, and one cationogenic block, connected to the polyisobutylene block, and; quaternization of the cationogenic block to form a block copolymer cationomer.
- 31. The process according to claim 30 wherein the polyisobutylene macroinitiator comprises polyisobutylene-2-bromoisobutyryl bromide.
- 32. The process according to claim 30 wherein the cationogenic monomer is an amine.
- 33. The process according to claim 32 wherein the amine is 2-dimethylamino ethyl methacrylate.
- 34. process of synthesizing a star block copolymer anionomer comprising:
providing a polyisobutylene macroinitiator having termini capable of mediating atom transfer radical polymerization; solubilizing, in a solvent system suitable for conducting atom radical transfer polymerization, said polyisobutylene macroinitiator and a plurality of anionogenic monomers, and; atom transfer radical polymerizing said polyisobutylene macroinitiator with said plurality of anionogenic monomers in said solvent to form a star polymer having at least three arms, each said arm comprising one polyisobutylene block formed from the polyisobutylene macroinitiator, and, one anionomeric block, connected to the polyisobutylene block.
- 35. A process of synthesizing a star block copolymer cationomer comprising:
providing a polyisobutylene macroinitiator having termini capable of mediating atom transfer radical polymerization; solubilizing, in a solvent system suitable for conducting atom radical transfer polymerization, said polyisobutylene macroinitiator and a plurality of cationogenic monomers, and; atom transfer radical polymerizing said polyisobutylene macroinitiator with said plurality of cationogenic monomers in said solvent to form a star polymer having at least three arms, each said arm comprising one polyisobutylene block formed from the polyisobutylene macroinitiator and one cationomeric block, connected to the polyisobutylene block.
Parent Case Info
[0001] This invention claims the benefit of U.S. Provisional Patent Application No. 60/370,003.
Government Interests
[0002] The research disclosed in this application was at least partially supported by a grant from the National Science Foundation, and therefore, the U.S. Government may have certain rights to this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60370003 |
Apr 2002 |
US |