Claims
- 1. A polyolefin product comprising a branched olefin copolymer having an isotactic polypropylene backbone, polyethylene branches and, optionally, one or more comonomers present in said backbone, said branches, or both said backbone and said branches, wherein the total comonomer content of said branched olefin copolymer is from 0 to 20 mole percent, and further, wherein the mass ratio of said isotactic polypropylene to said polyethylene ranges from 99.9:0.1 to 50:50.
- 2. The product of claim 1 wherein said branched olefin copolymer has dual melting points characteristic of crystalline polypropylene and crystalline polyethylene.
- 3. The product of claim 1 wherein no comonomers are present in either said backbone or said branches.
- 4. The product of claim 1 wherein one or more comonomers are present in said backbone.
- 5. The product of claim 4 wherein said one or more comonomers are selected from the group consisting of ethylene, C4-C20 α-olefins, geminally disubstituted monomers, C5-C25 cyclic olefins, C5-C25 styrenic olefins, and lower carbon number (C3-C8) alkyl substituted analogs of the cyclic and styrenic olefins.
- 6. The product of claim 1 wherein one or more comonomers are present in said branches.
- 7. The product of claim 6 wherein said one or more comonomers are selected from the group consisting of C3-C20 α-olefins, geminally disubstituted monomers, C5-C25 cyclic olefins, C5-C25 styrenic olefins, and lower carbon number (C3-C8) alkyl substituted analogs of the cyclic and styrenic olefins.
- 8. The product of claim 1 wherein said one or more comonomers comprise from 3 to 20 mole percent of said branched olefin copolymer.
- 9. The product of claim 8 wherein said one or more comonomers comprise from 5 to 17 mole percent of said branched olefin copolymer.
- 10. The product of claim 1 wherein the mass ratio of said isotactic polypropylene to said polyethylene ranges from 95:5 to 50:50.
- 11. The polyolefin product of claim 1 prepared by the process comprising:
a) copolymerizing ethylene, optionally with one or more copolymerizable monomers, in a polymerization reaction under conditions sufficient to form copolymer having greater than 40% chain end-group unsaturation; b) copolymerizing the product of a) with propylene and, optionally, one or more copolymerizable monomers, in a polymerization reactor under suitable polypropylene polymerization conditions using a chiral, stereorigid transition metal catalyst capable of producing isotactic polypropylene; and c) recovering said branched olefin copolymer.
- 12. The polyolefin product of claim 11 wherein step a) is conducted by a solution process in which said ethylene and one or more copolymerizable monomers are contacted with a transition metal olefin polymerization catalyst activated by an alumoxane cocatalyst, the mole ratio of aluminum to transition metal is less than 220:1.
- 13. The polyolefin product of claim 11 wherein step b) is conducted in a separate reaction by solution, slurry or gas phase polymerization.
- 14. The polyolefin product of claim 11 wherein said chiral, stereorigid transition metal catalyst compound in step b) is activated by an alumoxane cocatalyst or non-coordinating anion precursor.
- 15. A process for preparing a branched olefin copolymer comprising:
a) copolymerizing ethylene, optionally with one or more copolymerizable monomers, in a polymerization reaction under conditions sufficient to form copolymer having greater than 40% chain end-group unsaturation; b) copolymerizing the product of a) with propylene and, optionally, one or more copolymerizable monomers, in a polymerization reactor under suitable polypropylene polymerization conditions using a chiral, stereorigid transition metal catalyst capable of producing isotactic polypropylene; and c) recovering said branched olefin copolymer.
- 16. The process of claim 15 wherein step a) is conducted by a solution process in which said ethylene and one or more copolymerizable monomers are contacted with a transition metal olefin polymerization catalyst activated by an alumoxane cocatalyst, the mole ratio of aluminum to transition metal is less than 220:1.
- 17. The process of claim 15 wherein step b) is conducted in a separate reaction by solution, slurry or gas phase polymerization.
- 18. The process of claim 15 wherein said chiral, stereorigid transition metal catalyst compound in step b) is activated by an alumoxane cocatalyst or non-coordinating anion precursor.
Parent Case Info
[0001] This application is based on U.S. provisional application No. 60/037,323, filed Feb. 7, 1997, No. 60/046,812, filed May 2, 1997, and No. 60/067,782, filed Dec. 10, 1997.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60037323 |
Feb 1997 |
US |
|
60046812 |
May 1997 |
US |
|
60067782 |
Dec 1997 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09020307 |
Feb 1998 |
US |
Child |
10640153 |
Aug 2003 |
US |