Claims
- 1. A polymer alloy comprising (a) a cycloolefin copolymer component, and, dispersed in said cyclolefin copolymer component or components, (b) one or more particulate core/shell components, the core/shell particles of said core/shell component or components having a diameter of 0.01 to 0.7 micrometer;
- said cycolefin copolymer or components consisting essentially of at least one cycloolefin copolymer comprising structural units obtained by copolymerization of two or more of the following olefins in the indicated amounts:
- 0.1-99% by weight, based on the weight of the cycloolefin copolymer, of at least one of the following polycyclic olefins of the formulas I, II, III, IV, V or VI, ##STR6## in which R.sup.1, R.sup.2, R.sup.3, R.sup.4, R.sup.5, R.sup.6, R.sup.7 and R.sup.8 are identical or different and are a hydrogen atom or a C.sub.1 -C.sub.20 hydrocarbon radical, or two or more of the radicals R.sup.1 through R.sup.8 form a ring, if sterically positioned to be able to form a ring, and the radicals R.sup.1 to R.sup.8 in the formulae I to VI can have a different meaning,
- 0to 95% by weight, based on the total weight of the cyclolefin copolymer, of at least one monocyclic olefin of the formula VII ##STR7## in which n is a number from 2 to 10, and 0to 99% by weight, based on the total weight of the cycloolefin polymer, of one or more acyclic olefins of the formulae VIII ##STR8## in which R.sup.9, R.sup.10, R.sup.11 and R.sup.12 are identical or different and are a hydrogen atom or a C.sub.1 -C.sub.20 hydrocarbon radical; and said particulate core/shell component consisting essentially of:
- one or more rubber phases and one or more hard phases, the hard phase or phases having a glass transition temperature above 50.degree. C. and the rubber phase or phases having a lower glass transition temperature than said hard phase or phases, said rubber and hard phases consisting essentially of polymerized unsaturated compounds having carbon-carbon bonds in the polymer backbone.
- 2. A polymer alloy as claimed in claim 1, wherein said alloy comprises 2 to 50% by weight of said particulate core/shell component, essentially the balance of said polymer alloy being said cycloolefin copolymer component.
- 3. A polymer alloy as claimed in claim 1, wherein, in said particulate core/shell component, said rubber phase comprises 10 to 90% by volume of said component, based on the total volume of particles in said component, and said hard phase comprises 90 to 10% by volume of said component, on the same basis.
- 4. A polymer alloy as claimed in claim 1 wherein said rubber phase has a glass transition temperature below 0.degree. C., and said hard phase has a glass transition temperature above 80.degree. C.
- 5. A polymer alloy as claimed in claim 1, wherein said polymer alloy further comprises: a plasticizing agent, a UV stabilizer, an optical brightener, an antioxidant, an antistatic agent, a heat stabilizer, a reinforcing additive, or a filler.
- 6. A polymer alloy comprising: (a) a cycloolefin copolymer component comprising a copolymer of the reactants comprising norbornene or tetracyclododecene and an acyclic olefin, and dispersed in said cycloolefin copolymer component, (b) 2 to 50% by weight, based on the total alloy, of a particulate core/shell component comprising at least one rubbery phase having a glass transition temperature below 0.degree. C. and a hard phase having a glass transition temperature above 50.degree. C.; the rubbery phase consisting essentially of, or, if more than one rubbery phase is present in said alloy, each said rubbery phase consisting essentially of one or more polymerized unsaturated compounds.
- 7. A polymer alloy as claimed in claim 1, wherein:
- said particulate core/shell components have an average refractive index, determined as the volume mean, of 1.52 to 1.55.
- 8. A method for the preparation of the polymer alloy of claim 1, comprising the step of mixing together said cycloolefin copolymer component and said particulate core/shell component.
- 9. A method for the preparation of the polymer alloy of claim 1, comprising the steps of:
- (a) preparing an alloy by mixing said cycloolefin copolymer component and said particulate core/shell component, and
- (b) mixing the resulting masterbatch with additional cycloolefin copolymer.
- 10. A method for making a shaped article, comprising the step of shaping a polymer alloy of claim 1 to obtain the desired shaped article.
- 11. A shaped article comprising a polymer alloy of claim 1.
- 12. A polymer alloy as claimed in claim 3, wherein said rubber phase has a glass transition temperature below 0.degree. C., and said hard phase has a glass transition temperature above 80.degree. C. and said particulate core/shell components have an average refractive index, determined as the volume mean, of 1.52 to 1.55 and said particulate core/shell components have a diameter of 0.02 to 0.4 micrometer.
- 13. A polymer alloy as claimed in claim 12 wherein said rubber phase has a glass transition temperature below 0.degree. C., and said hard phase has a glass transition temperature above 100.degree. C. and said particulate core/shell components have an average refractive index, determined as the volume mean, of 1.53 to 1.54 and said particulate core/shell components have a diameter of 0.05 to 0.3 micrometer.
- 14. A polymer alloy as claimed in claim 13, wherein, in said particulate core/shell component, said rubber phase comprises 30 to 60% by volume of said component, based on the total volume of particles in said component, and said hard phase comprises 70 to 40% by volume of said component, on the same basis.
- 15. A polymer alloy as claimed in claim 6, wherein said hard phase has a glass transition temperature above 80.degree. C. and said particulate core/shell components have an average refractive index, determined as the volume mean, of 1.52 to 1.55.
- 16. A polymer alloy as claimed in claim 15, wherein said rubber phase has a glass transition temperature below 0.degree. C., and said hard phase has a glass transition temperature above 100.degree. C. and said particulate core/shell components have an average refractive index, determined as the volume mean, of 1.53 to 1.54 and said particulate core/shell components have a diameter of 0.05 to 0.3 micrometer.
- 17. The polymer alloy as claimed in claim 1, wherein the alloy consists of (a) a cycloolefin copolymer component, and, dispersed in said cyclolefin copolymer component or components, (b) one or more particulate core/shell components, the core/shell particles of said core/shell component or components having a diameter of 0.01 to 0.7 micrometer;
- said cyclolefin copolymer component or components consisting of at least one cycloolefin copolymer consisting of structural units obtained by copolymerization of two or more of the following olefins in the indicated amounts:
- 0.1-99% by weight, based on the weight of the cycloolefin copolymer, of at least one of the following polycyclic olefins of the formulas I, II, III, IV, V or VI,
- 0 to 95% by weight, based on the total weight of the cyclolefin copolymer, of at least one monocyclic olefin of the formula VII and
- 0 to 99% by weight, based on the total weight of the cycloolefin polymer, of
- one or more acyclic olefins of the formulae VIII and said particulate core/shell component consisting of: one or more rubber phases and one or more hard phases, the hard phase or phases having a glass transition temperature above 50.degree. C. and the rubber phase or phases having a lower glass transition temperature than said hard phase or phases, said rubber and hard phases consisting of polymerized unsaturated compounds having carbon-carbon bonds in the polymer backbone.
- 18. A polymer alloy as claimed in claim 17, wherein said alloy consists of 2 to 50% by weight of said particulate core/shell component, essentially the balance of said polymer alloy being said cycloolefin copolymer component.
- 19. A polymer alloy as claimed in claim 1, wherein, in said particulate core/shell component, said rubber phase consists of 10 to 90% by volume of said component, based on the total volume of particles in said component, and said hard phase comprises 90 to 10% by volume of said component, on the same basis and said rubber phase has a glass transition temperature below 0.degree. C., and said hard phase has a glass transition temperature above and said particulate core/shell components have an average refractive index, determined as the volume mean, of 1.52 to 1.55.
- 20. The method as claimed in claim 8, which consists essentially of the step of mixing together said cycloolefin copolymer component and said particulate core/shell component.
Parent Case Info
This application is a continuation of application Ser. No. 08/808,668, Feb. 28, 1997, now abandoned.
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Continuations (1)
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Number |
Date |
Country |
Parent |
808668 |
Feb 1997 |
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