Claims
- 1. A branched olefin polymer having an isotactic polypropylene backbone, optionally comprising monomer units from one or more comonomers, and sidechains derived from macromers comprising:(a) vinyl ended ethylene homopolymer or ethylene coplymer chains having a number average molecular weight (Mn) of about 1500 to 25,154, the number average molecular weight being determined by gel permeation chromatography (GPC) at 145° C.; (b) a ratio of vinyl groups to total olefin groups according to the formula: (vinyl groups/olefin groups)>(comonomer mole percentage+0.1)a×10a×bzwherein a=−0.24 and b=0.8; or a=−0.20 and b=0.8; or a=−0.18 and b=0.83; or a=−0.15, b=0.83; or a=−0.10 and b=0.85;wherein:1) the total number of vinyl groups per 1000 carbon atoms of the sidechains is greater than or equal to 8000÷Mn (as determined by 1H-NMR at 125° C.); 2) the Mw/Mn of the side chains ranges from 2.083 to 5.666; 3) the total comonomer content of the branched olefin copolymer is from 0 to 20 mole percent; and 4) the mass ratio of the isotactic polypropylene to the sidechains ranges from 99.9:0.1 to 50:50.
- 2. The branched olefin polymer of claim 1 wherein the backbone contains 0 mole percent comonomer.
- 3. The branched olefin polymer of claim 1 wherein the backbone further comprises one or more comonomers selected from the group consisting of ethylene, C4-C20 α-olefins, geminally disubstituted olefins, C5-C25 cyclic olefins, and C3-C8 alkyl substituted analogs of the cyclic olefins.
- 4. The branched olefin polymer of claim 1 wherein the backbone further comprises one or more comonomers 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.
- 5. The branched olefin polymer of claim 1 wherein the backbone comprises highly isotactic polypropylene.
- 6. The branched olefin polymer of claim 1 wherein the backbone is a combination of isotactic and syndiotactic polypropylene.
- 7. The branched olefin polymer of claim 1 wherein the sidechains contain 0 mole percent of comonomer.
- 8. The branched olefin polymer of claim 1 wherein the sidechains contain 0 to 15 mole percent of comonomer.
- 9. The branched olefin polymer of claim 1 wherein the sidechains contain 1 to 10 mole percent of comonomer.
- 10. The branched olefin polymer of claim 1 wherein the sidechains contain 2 to 6 mole percent of comonomer.
- 11. The branched olefin polymer of claim 1 wherein the sidechains further comprise one or more comonomers selected from the group consisting of C3-C20 α-olefins, geminally disubstituted olefins, C5-C25 cyclic olefins, C8-C25 styrenic olefins, and C3-C8 alkyl substituted analogs of the cyclic and styrenic olefins.
- 12. The branched olefin polymer of claim 1 wherein the sidechain has an Mn above 3000 and a comonomer content of 0.2 to 4.0 mole percent.
- 13. The branched olefin polymer of claim 1 wherein the sidechain has an Mn above 3000 and 0.2 to 4.0 mole percent of a comonomer selected from the group consisting of 1-octene, 1-butene, norbornene and alkyl substituted norbornene.
- 14. The branched olefin polymer of claim 1 wherein the sidechain has a melt enthalpy of less than or equal to 90 cal/g.
- 15. The branched olefin polymer of claim 1 wherein the sidechains are have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of one or more of 1-octene, norbornene, and 1-butene.
- 16. The branched olefin polymer of claim 1 wherein the sidechains comprise ethylene, at least one comonomer selected from C3 to C12 α-olefins and at least one additional comonomer.
- 17. The branched olefin polymer of claim 1 wherein the sidechains comprise ethylene, at least one comonomer selected from C3 to C12 α-olefins and at least one additional comonomer selected from the group consisting of C3-C20 α-olefins, geminally disubstituted olefins, C5-C25 cyclic olefins, C8-C25 styrenic olefins, and C3-C8 alkyl substituted analogs of the cyclic and styrenic olefins.
- 18. The branched olefin polymer of claim 1 wherein the sidechains comprise a mixture of sidechains with different molecular weights and/or compositions.
- 19. The branched olefin polymer of claim 1 wherein the backbone further comprises syndiotactic polypropylene.
- 20. The branched olefin polymer of claim 1 wherein the sidechains comprise one or more comonomers selected from the group consisting of C3-C20 α-olefins, geminally disubstituted monomers, C5-C25 cyclic olefins, C8-C25 styrenic olefins, and C3-C8 alkyl substituted analogs of the cyclic and styrenic olefins; and, the backbone comprises one or more comonomers selected from the group consisting of ethylene, C4-C20 α-olefins, geminally disubstituted olefins, C5-C25 cyclic olefins, C8-C25 styrenic olefins, and C3-C8 alkyl substituted analogs of the cyclic and styrenic olefins.
- 21. The branched olefin polymer of claim 1 wherein the sidechains comprise 1 to 10 mole percent of one or more comonomers selected from the group consisting of C3-C20 α-olefins, geminally disubstituted olefins, C5-C25 cyclic olefins, C8-C25 styrenic olefins, and C3-C8 alkyl substituted analogs of the cyclic and styrenic olefins; and the backbone comprises one or more comonomers selected from the group consisting of ethylene, C4-C20 α-olefins, geminally disubstituted olefins, C5-C25 cyclic olefins, C8-C25 styrenic olefins, and C3-C8 alkyl substituted analogs of the cyclic and styrenic olefins; and the total comonomer content of the branched olefin polymer is from 3 to 20 mole percent.
- 22. The branched olefin polymer of claim 1 wherein the sidechains comprise 1 to 10 mole percent of one or more comonomers selected from the group consisting of C3-C20 α-olefins, and the backbone comprises one or more comonomers selected from the group consisting of ethylene and C4-C20 α-olefins; and the total comonomer content of the branched olefin polymer is from 3 to 20 mole percent.
- 23. The branched olefin polymer of claim 1 wherein the sidechains are homopolyethylene and the backbone is homopolypropylene.
- 24. The branched olefin polymer of claim 1 wherein the sidechains are homopolyethylene and the backbone is highly isotactic polypropylene.
- 25. The branched olefin polymer of claim 1 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of one or more of 1-octene, 1-butene, norbornene, or alkyl-substituted norbornene, and the backbone is homopolypropylene.
- 26. The branched olefin polymer of claim 1 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of 1-octene and/or 1-butene, and the backbone is highly isotactic polypropylene.
- 27. The branched olefin polymer of claim 1 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of one or more of 1-octene, norbornene or 1-butene, and the backbone is homopolypropylene.
- 28. The branched olefin polymer of claim 1 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of 1-octene, 1-butene, norbornene, or alkyl-substituted norbornene and the backbone is copolymer of propylene and one or more of ethylene and/or C4 to C20 α-olefins.
- 29. The branched olefin polymer of claim 1 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of 1-octene, and/or 1-butene; and the backbone is a copolymer of propylene and one or more of ethylene and/or C4 to C20 α-olefins; and the total comonomer content of the branched olefin polymer is from 3 to 20 mole percent.
- 30. The branched olefin polymer of claim 1 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of one or more of 1-octene, norbornene, and 1-butene; and the backbone is a copolymer of propylene and one or more of ethylene and/or C4 to C20 α-olefins; and the total comonomer content of the branched olefin polymer is from 5 to 17 mole percent.
- 31. The branched olefin polymer of claim 1 where the total comonomer content of the branched olefin copolymer is from 3 to 20 mole percent of said branched olefin copolymer.
- 32. The polyolefin product of claim 1 where the total comonomer content of the branched olefin copolymer is from 5 to 17 mole percent of said branched olefin copolymer.
- 33. The branched olefin copolymer of claim 1 wherein the mass ratio of the backbone to the sidechains ranges from 95:5 to 50:50.
- 34. The branched olefin polymer of claim 1 wherein the polymer has dual melting points characteristic of crystalline polypropylene and crystalline polyethylene.
- 35. A branched olefin polymer having an isotactic polypropylene backbone, optionally comprising monomer units from one or more comonomers, and sidechains derived from macromers comprising:(a) vinyl ended copolymer chains having a number average molecular weight (Ma) of about 1500 to 75,000, the number average molecular weight being determined by gel permeation chromatography (GPC) at 145° C.; and (b) a ratio of vinyl groups to total olefin groups according to the formula: (vinyl groups/olefin groups)>(comonomer mole percentage+0.1)a×10a×b, wherein a=−0.24 and b=0.8; or a=−0.20 and b=0.8; or a=−0.18 and b=0.83; or a=−0.15, b=0.83; or a=−0.10 and b=0.85;wherein:1) the total number of vinyl groups per 1000 carbon atoms of the sidechains is greater than or equal to 8000÷Ma (as measured by 1H-NMR at 125° C.); 2) the Mw/Mn of the sidechains ranges from 2.083 to 5.666; and 3) the vinyl ended copolymer chains comprise ethylene and at least one comonomer selected from C3 to C12 α-olefins.
- 36. The branched olefin polymer of claim 35 wherein backbone contains 0 mole percent comonomer.
- 37. The branched olefin polymer of claim 35 wherein the backbone further comprises one or more comonomers selected from the group consisting of ethylene, C4-C20 α-olefins, geminally disubstituted olefins, C5-C25 cyclic olefins, C8-C25 styrenic olefins, and C3-C8 alkyl substituted analogs of the cyclic and styrenic olefins.
- 38. The branched olefin polymer of claim 35 wherein the backbone is a combination of isotactic and syndiotactic polypropylene.
- 39. The branched olefin polymer of claim 35 wherein the backbone is a combination of isotactic and syndiotactic polypropylene.
- 40. The branched olefin polymer of claim 35 wherein the sidechains contain 1 to 15 mole percent of comonomer.
- 41. The branched olefin polymer of claim 35 wherein the sidechains contain 1 to 10 mole percent of comonomer.
- 42. The branched olefin polymer of claim 35 wherein the sidechains contain 2 to 6 mole percent of comonomer.
- 43. The branched olefin polymer of claim 35 wherein the sidechains have an Mn above 3000 and a comonomer content of 0.2 to 4.0 mole percent.
- 44. The branched olefin polymer of claim 35 wherein the sidechains have an Mn above 3000 and 0.2 to 4.0 mole percent of 1-octene and/or 1-butene.
- 45. The branched olefin polymer of claim 35 wherein the sidechains have a melt enthalpy of less than or equal to 90 cal/g.
- 46. The branched olefin polymer of claim 35 wherein the sidechains comprise ethylene, at least one comonomer selected from C3 to C12 α-olefins and at least one additional comonomer.
- 47. The branched olefin polymer of claim 35 wherein the sidechains comprises ethylene, at least one comonomer selected from C3 to C20 α-olefins and at least one additional comonomer selected from the group consisting of C3-C20 αolefins, geminally disubstituted olefins, C5-C25 cyclic olefins, C8-C25 styrenic olefins, and C3-C8 alkyl substituted analogs of the cyclic and styrenic olefins.
- 48. The branched olefin polymer of claim 35 wherein the sidechains comprise a mixture of sidechains with different molecular weights and/or compositions.
- 49. The branched olefin polymer of claim 35 wherein the sidechains comprise 1 to 10 mole percent of one or more comonomers; and the backbone comprises one or more comonomers selected from the group consisting of C3-C20 α-olefins; and the total comonomer content of the branched olefin polymer is from 3 to 20 mole percent.
- 50. The branched olefin polymer of claim 35 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of one or more of 1-octene and/or 1-butene and the backbone is homopolypropylene.
- 51. The branched olefin polymer of claim 35 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of 1-octene and/or, 1-butene, and the backbone is copolymer of propylene and one or more of ethylene and/or C4 to C20 alpha-olefins.
- 52. The branched olefin polymer of claim 35 wherein the sidechains are have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of 1-octene and/or 1-butene; and the backbone is a copolymer of propylene and one or more of ethylene and/or C4 to C20 α-olefins; and the total comonomer content of the branched olefin polymer is from 3 to 20 mole percent.
- 53. The branched olefin polymer of claim 35 wherein the sidechains have an Mn of more than 3000 and from 0.2 to 4.0 mole percent of one or more of 1-octene and/or 1-butene; and the backbone is a copolymer of propylene and ethylene and/or one or more C4 to C20 alpha-olefins; and the total comonomer content of the branched olefin polymer is from 5 to 17 mole percent.
- 54. The branched olefin polymer of claim 35 where the total comonomer content of the branched olefin copolymer is from 3 to 20 mole percent of said branched olefin copolymer.
- 55. The polyolefin product of claim 35 where the total comonomer content of the branched olefin copolymer is from 5 to 17 mole percent of said branched olefin copolymer.
- 56. A process to produce a branched olefin copolymer having an isotactic polypropylene backbone, optionally comprising monomer units from one or more comonomers, and sidechains derived from macromers comprising:a) contacting ethylene and, optionally with one or more copolymerizable monomers, with a transition metal olefin polymerization catalyst activated by an alumoxane cocatalyst, the mole ratio of aluminum to transition metal is between 20:1 and 100:1, in a solution at a temperature of 30 to 150° C. and a pressure of up to 345 MPa; b) obtaining a polymer product having: 1) greater than 40% chain end-group unsaturation, 2) a number average molecular weight (Mn) of about 1500 to 25,154, (as measured by gel permeation chromatography (GPC) at 145° C), 3) a ratio of vinyl groups to total olefin groups according to the formula: (vinyl groups/olefin groups)>(comonomer mole percentage+0.1)a×10a×b, wherein a=−0.24 and b=0.8; or a=−0.20 and b=0.8; or a=−0.18 and b=0.83; or a=−0.15, b=0.83; or a=−0.10 and b=0.85,4) a total number of vinyl groups per 1000 carbon atoms greater than or equal to 8000÷Mn (as determined by 1H-NMR at 125° C.), and 5) the Mw/Mn ranging from 2.083 to 5.666; c) copolymerizing the polymer product 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 d) recovering a branched olefin copolymer having a total comonomer content of from 0 to 20 mole percent; and a mass ratio of the isotactic polypropylene to the sidechains ranging from 99.9:0.1 to 50:50.
- 57. The process of claim 56 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.
- 58. The process of claim 57 wherein step (c) is conducted in a separate reaction by solution, slurry, or gas phase polymerization.
- 59. The process of claim 58 wherein said chiral, stereorigid transition metal catalyst compound in step (c) is activated by an alumoxane cocatalyst or non-coordinating anion precursor.
- 60. The process of claim 58 wherein the chiral, stereorigid transition metal catalyst compound in step (c) comprises one or more of:Dimethylsilandiylbis(2-methyl-4-phenyl-1-indenyl)ZrCl2Dimethylsilandiylbis(2-methyl-4,5-benzoindenyl)ZrCl2; Dimethylsilandiylbis(2-methyl-4,6-diisopropylindenyl)ZrCl2; Dimethylsilandiylbis(2-ethyl-4-phenyl-1-indenyl)ZrCl2; Dimethylsilandiylbis(2-ethyl-4-naphthyl-1-indenyl)ZrCl2; Phenyl(Methyl)silandiylbis(2-methyl-4-phenyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-(1-naphthyl)-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-(2-naphthyl)-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4,5-diisopropyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2,4,6-trimethyl-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4,6-diisopropyl-1-indenyl)ZrCl2, 1,2-Ethandiylbis(2-methyl-4,6-diisopropyl-1-indenyl)ZrCl2, 1,2-Butandiylbis(2-methyl-4,6-diisopropyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-ethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-isopropyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-t-butyl-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4-isopropyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-ethyl-4-methyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2,4-dimethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-ethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-α-acenaphth-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4,5-benzo-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4,5-(methylbenzo)-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4,5-(tetramethylbenzo)-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-a-acenaphth-1-indenyl)ZrCl2, 1,2-Ethandiylbis(2-methyl-4,5-benzo-1-indenyl)ZrCl2, 1,2-Butandiylbis(2-methyl-4,5-benzo-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4,5-benzo-1-indenyl)ZrCl2, 1,2-Ethandiylbis(2,4,7-trimethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-1-indenyl)ZrCl2, 1,2-Ethandiylbis(2-methyl-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-1-indenyl)ZrCl2, Diphenylsilandiylbis(2-methyl-1-indenyl)ZrCl2, 1,2-Butandiylbis(2-methyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-ethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-5-isobutyl-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-5-isobutyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-5-t-butyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2,5,6-trimethyl-1-indenyl)ZrCl2.
- 61. The process of claim 58 wherein the chiral, stereorigid transition metal catalyst compound in step (c) comprises one or more of:dimethylsilyl bis(2-methyl-indenyl)ZrCl2, dimethylsilyl bis(2-methyl-4-phenyl-1-indenyl)ZrCl2, dimethylsilyl bis(2-methyl-4-(1-naphthyl)-1-indenyl)ZrCl2, or dimethylsilyl bis(indenyl)hafnium dimethyl.
- 62. A process to produce a branched olefin copolymer having an isotactic polypropylene backbone, optionally comprising monomer units from one or more comonomers, and sidechains derived from macromers comprising:a) contacting ethylene and at least one C3 to C12 olefin comonomer with a transition metal olefin polymerization catalyst activated by an alumoxane cocatalyst, the mole ratio of aluminum to transition metal is between 20:1 and 100:1, in a solution at a temperature of 30 to 150° C. and a pressure of up to 345 MPa; b) obtaining a polymer product having: 1) greater than 40% chain end-group unsaturation, 2) a number average molecular weight (Mn) of about 1500 to 75,000, (as measured by gel permeation chromatography (GPC) at 145° C). 3) a ratio of vinyl groups to total olefin groups according to the formula: (vinyl groups/olefin groups)>(comonomer mole percentage+0.1)a×10a×b, wherein a=−0.24 and b=0.8; or a=−0.20 and b=0.8; or a=−0.18 and b=0.83; or a=−0.15, b=0.83; or a=−0.10 and b=0.85,4) a total number of vinyl groups per 1000 carbon atoms greater than or equal to 8000÷Mn (as determined by 1H-NMR at 125° C.), and 5) an Mw/Mn ranging from 2.083 to 5.666; c) copolymerizing the polymer product 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 d) recovering a branched olefin copolymer.
- 63. The process of claim 62 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.
- 64. The process of claim 63 wherein step (c) is conducted in a separate reaction by solution, slurry, or gas phase polymerization.
- 65. The process of claim 64 wherein said chiral, stereorigid transition metal catalyst compound in step (c) is activated by an alumoxane cocatalyst or non-coordinating anion precursor.
- 66. The process of claim 65 wherein the chiral, stereorigid transition metal catalyst compound in step (c) comprises one or more of:Dimethylsilandiylbis(2-methyl-4-phenyl-1-indenyl)ZrCl2Dimethylsilandiylbis(2-methyl-4,5-benzoindenyl)ZrCl2; Dimethylsilandiylbis(2-methyl-4,6-diisopropylindenyl)ZrCl2; Dimethylsilandiylbis(2-ethyl-4-phenyl-1-indenyl)ZrCl2; Dimethylsilandiylbis(2-ethyl-4-naphthyl-1-indenyl)ZrCl2; Phenyl(Methyl)silandiylbis(2-methyl-4-phenyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-(1-naphthyl)-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-(2-naphthyl)-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4,5-diisopropyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2,4,6-trimethyl-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4,6-diisopropyl-1-indenyl)ZrCl2, 1,2-Ethandiylbis(2-methyl-4,6-diisopropyl-1-indenyl)ZrCl2, 1,2-Butandiylbis(2-methyl-4,6-diisopropyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-ethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-isopropyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-t-butyl-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4-isopropyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-ethyl-4-methyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2,4-dimethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4-ethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-α-acenaphth-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4,5-benzo-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4,5-(methylbenzo)-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-4,5-(tetramethylbenzo)-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-α-acenaphth-1-indenyl)ZrCl2, 1,2-Ethandiylbis(2-methyl-4,5-benzo-1-indenyl)ZrCl2, 1,2-Butandiylbis(2-methyl-4,5-benzo-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-4,5-benzo-1-indenyl)ZrCl2, 1,2-Ethandiylbis(2,4,7-trimethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-1-indenyl)ZrCl2, 1,2-Ethandiylbis(2-methyl-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-1-indenyl)ZrCl2, Diphenylsilandiylbis(2-methyl-1-indenyl)ZrCl2, 1,2-Butandiylbis(2-methyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-ethyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-5-isobutyl-1-indenyl)ZrCl2, Phenyl(Methyl)silandiylbis(2-methyl-5-isobutyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2-methyl-5-t-butyl-1-indenyl)ZrCl2, Dimethylsilandiylbis(2,5,6-trimethyl-1-indenyl)ZrCl2.
- 67. The process of claim 65 wherein the chiral, stereorigid transition metal catalyst compound in step (c) comprises one or more of:dimethylsilyl bis(2-methyl-indenyl)ZrCl2, dimethylsilyl bis(2-methyl-4-phenyl-indenyl)ZrCl2, dimethylsilyl bis(2-methyl-4-(1-naphthyl)-indenyl)ZrCl2, dimethylsilyl bis(indenyl)hafnium dimethyl.
Parent Case Info
This application is based on U.S. provisional applications No. 60/037323, filed Feb. 2, 1997, No. 60/046812, filed May 2, 1997, and No. 60/067782, filed Dec. 10, 1997.
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|
Number |
Date |
Country |
|
60/037323 |
Feb 1997 |
US |
|
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|
60/067782 |
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