Claims
- 1. A method of producing an olefin copolymer from a feedstock including ethylene and at least one alpha olefin monomer comprising in any suitable sequence the steps of:
a) contacting said feedstock with an unbridged, rotating, non-rigid fluxional metallocene catalyst component in the presence of a co-catalyst for a time sufficient to produce an elastomeric thermoplastic copolymer; b) said unbridged fluxional metallocene catalyst component is selected from at least one compound of the formula: 5in which M is a Group 3, 4 or 5 Transition metal, a Lanthanide or an Actinide; X and X′ are the same or different uninegative ligands; and L and L′ are ligands selected from the same or different substituted, polynuclear, hydrocarbyl, and hetero-hydrocarbyl rings; c) said L and L′ ligands are selected so that the fluxional metallocene component isomerizes between at least two coordinate geometry states that have different reactivities toward at least one of ethylene and said alpha olefin while in the respective coordinate geometry states; and d) recovering an elastomeric copolymer product.
- 2. A polymerization process as in claim 1 wherein: said substituted rings are selected from cyclopentadienyl, heterocyclopentadienyl and indenyl rings; said uninegative ligands are selected from hydride, halogen, hydrocarbyl, halohydrocarbyl, amine, amide, or borohydride ions; said Transition Metal is selected from Titanium, Hafnium, Vanadium, and Zirconium; said Group 3 metal is Yttrium; said Lanthanide is Samarium; and said Actinide is Thorium.
- 3. A polymerization process as in claim 2 wherein said cyclopentadienyl and herterocyclopentadienyl rings have the formula:
- 4. A polymerization process as in claim 3 wherein said ligands L and L′ are selected cyclo-pentadienes of the general formula:
- 5. A polymerization process as in claim 4 wherein said cyclopentadiene is selected from 3,4-dimethyl-1-phenyl-1,3-cyclopentadiene (R2=R3=CH3, and R6=H), 3,4-dimethyl-1-p-tolyl-1, 3-cyclopentadiene (R2=R3=CH3, and R6=CH3), 3,4,-dimethyl-1-(3,5-bis(tri-fluoromethyl) phenyl)-1,3-cyclopentadiene (R2=R3=CH3, and R6=CF3), and 3,4-di-methyl-1-(4-tert-butylphenyl)-1,3-cyclopentadiene (R2=R3=CH3, and R6=tBu).
- 6. A polymerization process as in claim 3 wherein R1 is an aryl group and R2 and R3 are connected as part of a ring of 3 or more carbon atoms.
- 7. A polymerization process as in claim 6 wherein said aryl group is selected from phenyl, biphenyl and naphthyl groups.
- 8. A polymerization process as in claim 6 wherein said aryl group is a 2-aryl indene of the formula:
- 9. A polymerization process as in claim 8 wherein said 2-aryl indene is selected from 2-phenylindene; 1-methyl-2-phenyl indene; 2-(3,5-dimethylphenyl) indene; 2-(3,5-bis-tri-fluoromethylphenyl) indene; 1-methyl-2-(3,5-bis-trifluoromethylphenyl) indene; 2-(3,5-bis-tertbutylphenyl) indene; 1-methyl-2-(3,5-bis-tertbutylphenyl) indene; 2-(3,5-bis-tri-methylsilylphenyl) indene; 1 -methyl-2-(3,5-bis-trimethylsilylphenyl)indene; 2-(4-fluoro-phenyl) indene; 2-(2, 3, 4, 5-tetrafluorophenyl) indene; 2-(2, 3, 4, 5, 6-pentafluorophenyl) indene; 2-(1-naphthyl) indene; 2-(2-naphthyl) indene; 2-[(4-phenyl)phenyl] indene; and 2-[(3-phenyl) phenyl] indene.
- 10. A polymerization process as in claim 1 wherein at least some of the resulting copolymer product is fractionated into at least one fraction selected from an ether soluble, a hexanes soluble, and a hexanes insoluble fraction, and the mole fraction of ethylene in the various fractions of the copolymer are substantially within 15% of the mean mole percent ethylene of the initial resultant copolymer product.
- 11. A polymerization process as in claim 1 wherein the copolymer produced is selected from thermoplastic polymers having a molecular weight distribution, MW/Mn, </=10; a composition distribution </=15%; a melting point of >/= about 90° C.; a melting point index of >/= about 80° C.; a glass transition temperature of </= about −20° C.; a mole fraction of crystallizable component, Xc, of from about 30% to about 99%; and elastomeric properties.
- 12. A polymerization process as in claim 10 wherein said copolymer fractions are in the range of about 0% to about 70% by weight of said ether soluble fraction, from about 0% to about 95% of said hexanes soluble fraction and from about 0% to about 95% of said hexanes insoluble fraction.
- 13. A polymerization process as in claim 12 wherein said hexanes soluble fraction has a melting range of up to about 125° C., and said hexanes insoluble fraction has a melting range up to about 142° C.
- 14. A polymerization process as in claim 11 wherein said copolymer has a weight average molecular weight, MW, in excess of about 1 million.
- 15. A polymerization process as in claim 11 wherein said copolymer has a molecular weight distribution, MW/Mn, </=8.
- 16. A thermoplastic olefin copolymer having a molecular weight distribution, MW/Mn, </=10; a composition distribution </=15%; a melting point of >/= about 90° C.; a melting point index of >/= about 80° C.; a glass transition temperature of </= about −20° C.; a mole fraction of crystallizable component, Xc, of from about 30% to about 99%; and elastomeric properties.
- 17. A thermoplastic olefin copolymer as in claim 16 which comprises from about 0% to about 70% by weight of an ether soluble fraction, from about 0% to about 95% of a hexane soluble fraction, and from about 0% to about 95% of a hexane insoluble fraction.
- 18. A thermoplastic ethylene/alpha olefin copolymer as in claim 17 wherein said hexanes soluble fraction has a melting range of up to about 125° C., and said hexanes insoluble fraction has a melting range up to about 142° C.
- 19. A thermoplastic olefin copolymer as in claim 16 which has a weight average molecular weight, MW, in excess of about 1 million.
- 20. A thermoplastic olefin copolymer as in claim 16 which has a molecular weight distribution, MW/Mn, </=8.
- 21. A thermoplastic olefin copolymer as in claim 20 which has a molecular weight distribution, MW/Mn, </=6.
- 22. A thermoplastic olefin copolymer as in claim 16 wherein the comonomers are selected from ethylene and alpha olefins.
- 23. An unbridged fluxional metallocene catalyst component which exhibits plural coordination geometries for olefin polymerization, having the formula:
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is a CIP Divisional of U.S. application Ser. No. 09/227,228 filed Jan. 8, 1999, now U.S. Pat. No. 6,160,151 Issued Jan. 2, 2001, which in turn is the regular application of an earlier filed Provisional application Ser. No. 60/071,050, entitled Catalyst and Process for Synthesis of Olefin Block Copolymers, filed Jan. 9, 1998 by Waymouth and Kravchenko, the benefit of the filing date of which is hereby claimed under 35 U.S. Code §§ 112, 119(e) and 120, and under appropriate provisions of the PCT rules.
Provisional Applications (1)
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Number |
Date |
Country |
|
60071050 |
Jan 1998 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09227228 |
Jan 1999 |
US |
Child |
09752034 |
Dec 2000 |
US |