Claims
- 1. A process for preparing a polymeric ligand said process comprising contacting at least one bridged cyclopentadienyl-type monomer and at least one initiator under polymerization conditions
- wherein said polymeric ligand is represented by the formula Q.sub.n, and wherein Q is a unit containing said at least one bridged cyclopentadienyl-type monomer, and wherein said polymeric ligand is a homopolymer or a copolymer, n is 1-5000, and
- wherein said at least one bridged cyclopentadienyl-type monomer is represented by the formula ZRZ wherein each Z is individually a cyclopentadienyl-type group selected from the group consisting of cyclopentadienyl, substituted cyclopentadienyl, indenyl, substituted indenyl, fluorenyl, substituted fluorenyl, styrene, and substituted styrene, R is a bridging group and is an alkylene group containing from 1 to 12 carbon atoms, an aryl-containing group having from 6 to 12 carbon atoms, silicon-containing group, germanium-containing group, or tin-containing group, and
- wherein said at least one initiator is selected from the group consisting of azobisisobutyronitrile, phenyl-azo-triphenylmethane, tert-butyl peroxide, cumyl peroxide, acetyl peroxide, benzoyl peroxide, lauroyl peroxide, tert-butyl hydroperoxide, tert-butyl perbenzoate, boron trifluoride etherate, alkali metal compounds, zinc dichloride, and aluminum trichloride.
- 2. A process according to claim 1 wherein at least one Z is fluorenyl or substituted fluorenyl.
- 3. A process according to claim 2 wherein said at least one initiator is selected from the group consisting of alkali metal compounds, azobisisobutyronitrile, zinc dichloride, or boron trifluoride etherate.
- 4. A process according to claim 3 wherein said at least one initiator is a lithium alkyl containing 1 to 8 carbon atoms.
- 5. A process for preparing a polymeric ligand said process comprising contacting at least one bridged cyclopentadienyl-type monomer, at least one unbridged cyclopentadienyl-type monomer and at least one initiator under polymerization conditions
- wherein said polymeric ligand is represented by the formula Q.sub.n, and wherein Q is a unit containing said at least one bridged cyclopentadienyl-type monomer, and wherein said polymeric ligand is a copolymer, n is 1-5000, and
- wherein said at least one bridged cyclopentadienyl-type monomer is represented by the formula ZRZ wherein each Z is individually a cyclopentadienyl-type group selected from the group consisting of cyclopentadienyl, substituted cyclopentadienyl, indenyl, substituted indenyl, fluorenyl, substituted fluorenyl, styrene, and substituted styrene, R is a bridging group and is an alkylene group containing from 1 to 12 carbon atoms, an aryl-containing group having from 6 to 12 carbon atoms, silicon-containing group, germanium-containing group, or tin-containing group, and
- wherein said at least one unbridged cyclopentadienyl-type monomer is represented by the formula Z wherein Z is a cyclopentadienyl-type group selected from the group consisting of cyclopentadienyl, substituted cyclopentadienyl, indenyl, substituted indenyl, fluorenyl, substituted fluorenyl, styrene, and substituted styrene, and
- wherein said at least one initiator is selected from the group consisting of azobisisobutyronitrile, phenyl-azo-triphenylmethane, tert-butyl peroxide, cumyl peroxide, acetyl peroxide, benzoyl peroxide, lauroyl peroxide, tert-butyl hydroperoxide, tert-butyl perbenzoate, boron trifluoride etherate, alkali metal compounds, zinc dichloride, and aluminum trichloride.
- 6. A process according to claim 5 wherein at least one Z is fluorenyl or substituted fluorenyl and at least one Z is styrene or substituted styrene.
- 7. A process according to claim 6 wherein said at least one initiator is selected from the group consisting of alkali metal compounds, azobisisobutyronitrile, zinc dichloride, or boron trifluoride etherate.
- 8. A process according to claim 7 wherein said at least one initiator is a lithium alkyl containing 1 to 8 carbon atoms.
- 9. A process according to claim 1 wherein said bridged cyclopentadienyl-type monomers are selected from the group consisting of
- 1-(9-(2-vinyl)fluorenyl)-2-(9-fluorenyl)ethane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)methane,
- (9-fluorenyl)(cyclopentadienyl)methane,
- 1-(9-(2-vinyl)fluorenyl)-2-(cyclopentadienyl)ethane,
- (9-(2-vinyl)fluorenyl)(1-indenyl)methane,
- 1-(9-(2-vinyl)fluorenyl)-1-(cyclopentadienyl)cyclopentane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)(1-cyclo-3-hexenyl)methane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)dimethylmethane,
- (9-fluorenyl)[1-(3-vinyl)phenylcyclopentadienyl]diphenylmethane,
- (9(2,7-divinyl)fluorenyl)(1-(3-methyl)cyclopentadienyl)dimethylmethane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)silane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)dimethylsilane,
- (9-(2-vinyl)fluorenyl)(9-fluorenyl)diphenylsilane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)dimethylgermane,
- (9-(2-vinyl)fluorenyl)(fluorenyl)dimethylstannane,
- 1-(9-(2-vinyl)fluorenyl)-3-(cyclopentadienyl)propane,
- 1-(9-fluorenyl)-1-(methyl)-1-(1-(2-vinylcyclopentadienyl)ethane,
- (9-(2,7-diphenylfluorenyl)(1-(3-vinyl)cyclopentadienyl)diphenylmethane,
- bis(9-(1-methyl-4-vinyl)fluorenyl)diphenylmethane,
- bis(9-fluorenyl)dimethylmethane, and
- (fluorenyl)(cyclopentadienyl)methyl)(1-(4vinyl)phenyl)methane.
- 10. A process according to claim 5 wherein said bridged cyclopentadienyl-type monomers are selected from the group consisting of
- 1-(9-)2-vinyl)fluorenyl)-2-(9-fluorenyl)ethane,
- (9-(2-vinyl)fluorenyl)(cycolpentadienyl)methane,
- (9-fluorenyl)(cyclopentadienyl)methane,
- 1-(9-(2-vinyl)fluorenyl)-2-(cyclopentadienyl)ethane,
- (9-(2-vinyl)fluorenyl)(1-indenyl)methane,
- 1-(9-(2-vinyl)fluorenyl)-1-(cyclopentadienyl)cyclopentane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)(1-cyclo-3-hexenyl)methane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)dimethylmethane,
- (9-fluorenyl)[1-(3-vinyl)phenylcyclopentadienyl]diphenylmethane,
- (9-(2,7-divinyl)fluorenyl)(1-(3-methyl)cyclopentadienyl)dimethylmethane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)silane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)dimethylsilane,
- (9-(2-vinyl)fluorenyl)(9-fluorenyl)diphenylsilane,
- (9-(2-vinyl)fluorenyl)(cyclopentadienyl)dimethylgermane,
- (9-(2-vinyl)fluorenyl)(fluorenyl)dimethylstannane,
- 1-(9-(2-vinyl)fluorenyl)-3-(cyclopentadienyl)propane,
- 1-(9-fluorenyl)-1-(methyl)-1-(1-(2-vinylcyclopentadienyl)ethane,
- (9-(2,7-diphenylfluorenyl)(1-(3-vinyl)cyclopentadienyl)diphenylmethane,
- bis(9-(1-methyl-4-vinyl)fluorenyl)diphenylmethane,
- bis(9-fluorenyl)dimethylmethane, and
- (fluorenyl)(cyclopentadienyl)methyl)(1-(4-vinyl)phenyl)methane.
- 11. A process for producing a polymeric ligand in accordance with claim 1 wherein 1-(9-(2-vinyl)fluorenyl)-2-(9-fluorenyl) ethane is reacted with n-butyllithium to produce the polymeric ligand.
- 12. A process according to claim 5 wherein the polymeric ligand is prepared by reacting 1-(9-(2-vinyl)fluorenyl)-2-(9-fluorenyl), styrene, and azo bis isobutyronitrile.
Parent Case Info
This application is a Division of application Ser. No. 08/339,537, filed Nov. 15, 1994, now U.S. Pat. No. 5,770,755.
US Referenced Citations (14)
Non-Patent Literature Citations (2)
Entry |
"Friedel-Crafts Polymerization of Fluorene with Methylene Chloride, Methoxyacetyl Chloride, and Chloromethyl Ether," Nystuen and Jones, Journal of Polymer Science: Polymer Chemistry Edition, vol. 23, 1433-1444 (1985). |
"Synthesis of Vinylfluorene-Vinylfluorenone Polymers," Gipstein et al., Journal of Polymer Chemistry, Polymer Letters, vol. 9, 671-676 (1971). |
Divisions (1)
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Number |
Date |
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339537 |
Nov 1994 |
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