Claims
- 1. A solid elastomeric block copolymer wherein either 1) the terminal blocks are polymers of at least one conjugated diene I, which contains at least five carbon atoms with at least one of each pair of double-bonded carbon atoms in the polymerized diene I units being additionally single-bonded to two carbon atoms, at least one middle or interior block is a butadiene polymer, and at least one middle or interior block is a polymer of at least one aryl-substituted olefin S; or 2) the terminal blocks are random copolymers IB of at least one diene I and butadiene (B), and at least one middle or interior block is a polymer of at least one aryl-substituted olefin S, said butadiene polymer or random IB copolymer blocks containing below about 10% of polyethylene crystallinity after hydrogenation.
- 2. The block copolymer of claim 1 which has been selectively hydrogenated so that the polymerized butadiene units are substantially completely hydrogenated while a number of polymerized I units retain their unsaturation sufficient to vulcanize said block copolymer.
- 3. The selectively hydrogenated block copolymer of claim 2 which has been subjected to a vulcanization treatment.
- 4. The block copolymer of claim 1 composed of the blocks of category 1) and comprising about 1 to 50 wt. % of I polymer blocks, about 50 to 98 wt. % of butadiene polymer blocks, and about 1 to 30 wt. % of S polymer blocks, all based on the total weight of said block copolymer.
- 5. The block copolymer of claim 1 composed of the blocks of category 2) and comprising an average of about 70 to 99 wt. % of IB random copolymer blocks, and about 1 to 30 wt. % of S polymer blocks, all based on the total weight of block copolymer, with the polymerized I units being an average of about 1 to 50 wt. % of each random IB copolymer block, with the remainder being polymerized butadiene.
- 6. The block copolymer of claim 1 composed of five blocks of category 1) wherein the end blocks are polymers of diene I, the second and fourth blocks are polymers of butadiene, and the central block is a polymer of aryl-substituted olefin S.
- 7. The pentablock copolymer of claim 6 having the formula
- (I.sub.x)--(B.sub.y)--(S.sub.z)--(B.sub.y)--(I.sub.x)
- wherein x is the average number of polymerized I units in each I polymer block and has an average value of about 7 to 368 (one half the molecular total), y is the number of polymerized butadiene (B) units in each B polymer block and has an average value of about 185 to 907 (one half the molecular total), and z is the number of polymerized S units in the S polymer block and has an average value of about 10 to 288, all values being per 100,000 M.W.
- 8. The block copolymer of claim 7 wherein I is isoprene and S is styrene, and at least 25% of the polymerized butadiene units have the 1,2 microstructure.
- 9. The block copolymer of claim 7 which has been selectively hydrogenated so that the polymerized butadiene units are substantially completely hydrogenated while a number of polymerized I units retain their unsaturation sufficient to vulcanize said block copolymer.
- 10. The selectively hydrogenated block copolymer of claim 9 which has been subjected to a vulcanization treatment.
- 11. The block copolymer of claim 1 composed of five blocks of category 1) wherein the end blocks are polymers of diene I, the second and fourth blocks are polymers of aryl-substituted olefin S, and the central block is a polymer of butadiene.
- 12. The block copolymer of claim 11 which is a pentablock copolymer having the formula
- (I.sub.x)--(S.sub.z)--(B.sub.y)--(S.sub.z)--(I.sub.x)
- wherein x is the number of polymerized I units in each I polymer block and has an average value of about 7 to 368 (one half the molecular total), y is the number of polymerized butadiene units in the B polymer block and has an average value of about 370 to 1815, and z is the number of polymerized S units in the S polymer block and has an average value of about 5 to 144 (one half the molecular total), all values being per 100,000 M.W.
- 13. The block copolymer of claim 12 wherein I is isoprene and S is styrene, and at least 25% of the polymerized butadiene units have the 1,2 microstructure.
- 14. The block copolymer of claim 12 which has been selectively hydrogenated so that the polymerized butadiene units are substantially completely hydrogenated while a number of polymerized I units retain their unsaturation sufficient to vulcanize said block copolymer.
- 15. The selectively hydrogenated block copolymer of claim 14 which has been subjected to a vulcanization treatment.
- 16. The block copolymer of claim 1 composed of three blocks of category 2) wherein the end blocks are each a random copolymer of diene I and butadiene and the central block is a polymer of aryl-substituted olefin S.
- 17. The triblock copolymer of claim 16 having the formula
- (I.sub.x B.sub.y)--(S.sub.z)--(I.sub.x B.sub.y)
- wherein x is the number of polymerized I units in each random IB copolymer block and has an average value of about 7 to 368, y is the number of polymerized butadiene (B) units in each random IB copolymer block and has an average value in the range of about 185 to 907, and z is the number of polymerized S units in the central block and has a value of about 10 to 288, said values being per 100,000 M.W.
- 18. The block copolymer of claim 12 wherein I is isoprene and S is styrene, and at least 25% of the polymerized butadiene units have the 1,2 microstructure.
- 19. The block copolymer of claim 17 which has been selectively hydrogenated so that the polymerized butadiene units are substantially completely hydrogenated while a number of polymerized I units retain their unsaturation sufficient to vulcanize said block copolymer.
- 20. The selectively hydrogenated block copolymer of claim 19 which has been subjected to a vulcanization treatment.
- 21. The block copolymer of claim 1 in the form of a star-branched polymer with each branch being a triblock copolymer containing an outermost I polymer block, a central butadiene polymer block and an innermost S polymer block and wherein the average total molecular number of polymerized I units in all the branches is in the range of about 15 to 735, the average total molecular number of polymerized butadiene units in all the branches is in the range of about 370 to 1815, and the average total molecular number of polymerized S units in all the branches is in the range of about 10 to 288, all values being per 100,000 M.W.
- 22. The star-branched block copolymer of claim 21 wherein I is isoprene and S is styrene, and at least 25% of the polymerized butadiene units have the 1,2 microstructure.
- 23. The star-branched block copolymer of claim 21 which has been selectively hydrogenated so that the polymerized butadiene units are substantially completely hydrogenated while a number of polymerized I units retain their unsaturation sufficient to vulcanize said block copolymer.
- 24. The selectively hydrogenated star-branched block copolymer of claim 23 which has been subjected to a vulcanization treatment.
- 25. The block copolymer of claim 1 in the form of a star-branched polymer with each branch being a triblock copolymer containing an outermost I polymer block, a central S polymer block and an innermost butadiene polymer block and wherein the average total molecular number of polymerized I units in all the branches is in the range of about 15 to 735, the average total molecular number of polymerized butadiene units in all the branches is in the range of about 370 to 1815, and the average total molecular number of polymerized S units in all the branches is in the range of about 10 to 288, all values being per 100,000 M.W.
- 26. The star-branched block copolymer of claim 25 wherein I is isoprene and S is styrene, and at least 25% of the polymerized butadiene units have the 1,2 microstructure.
- 27. The star-branched block copolymer of claim 25 which has been selectively hydrogenated so that the polymerized butadiene units are substantially completely hydrogenated while a number of polymerized I units retain their unsaturation sufficient to vulcanize said block copolymer.
- 28. The selectively hydrogenated star-branched block copolymer of claim 27 which has been subjected to a vulcanization treatment.
- 29. The block copolymer of claim 1 in the form of a star-branched polymer with each branch being a diblock copolymer containing an external random IB copolymer block and an internal S polymer block and wherein the average total molecular number of polymerized I units in all the branches is in the range of about 15 to 735, the average total molecular number of polymerized butadiene units in all the branches is in the range of about 370 to 1815, and the average molecular number of polymerized S units in all the branches is in the range of about 10 to 288, all values being per 100,000 M.W.
- 30. The star-branched block copolymer of claim 29 wherein I is isoprene and S is styrene, and at least 25% of the polymerized butadiene units have the 1,2 microstructure.
- 31. The star-branched block copolymer of claim 29 which has been selectively hydrogenated so that the polymerized butadiene units are substantially completely hydrogenated while a number of polymerized I units retain their unsaturation sufficient to vulcanize said block copolymer.
- 32. The selectively hydrogenated star-branched block copolymer of claim 31 which has been subjected to a vulcanization treatment.
- 33. A sulfonated polymer produced by a method comprising sulfonating the selectively hydrogenated block copolymer of claim 2, followed by neutralization of the thus formed polymeric sulfonic acid with metal ions or amines.
- 34. A maleated polymer produced by a method comprising contacting the selectively hydrogenated block copolymer of claim 2 with maleic anhydride.
- 35. The block copolymer of claim 1 having a weight-average molecular weight of from about 30,000 to 1,500,000 and a number-average molecular weight of from about 20,000 to 1,000,000.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of application Ser. No. 07/466,233, filed, Jan. 16, 1990, by T. S. Coolbaugh et al now U.S. Pat. No. 5,187,236.
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3577357 |
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May 1971 |
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4120915 |
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4657970 |
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Number |
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0315280 |
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EPX |
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Entry |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
466233 |
Jan 1990 |
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