Claims
- 1. A shape memory polymer composition obtained by copolymerizing two different monomers, the homopolymers of which would each have a different glass transition temperature to produce a copolymer having a glass transition temperature between that of the two homopolymers.
- 2. Shape memory polymer according to claim 1 wherein said monomer are each a member selected from the group consisting of vinyl monomers, vinylidene monomers and alkyl methacrylates.
- 3. A shape memory polymer composition according to claim 2 wherein said monomers are each vinyl monomers.
- 4. A shape memory polymer composition according to claim 1 wherein one of said monomers is a high Tg polymer forming monomer and is a member selected from the group consisting of vinyl chloride, vinyl butyral, vinyl fluoride, vinyl pivalate, 2-vinyl chloride, vinyl butyral, vinyl fluoride, vinyl pivalate, 2-vinylnaphthalene, 2-vinylpyridine, 4-vinyl pyridine, vinylpyrrolidone, n-vinyl carbazole, vinyl toluene, vinyl benzene (styrene), methyl methacrylate, ethyl methacrylate, acryl-functionalized POSS, and methacryl-functionalized POSS.
- 5. A shape memory polymer composition according to claim 1 wherein one of said monomers is a low Tg polymer-forming monomer and is a member selected from the group consisting of vinyl ethyl ether, vinyl laurate, vinyl methyl ether, vinyl propionate, alkyl acrylates, and alkyl methacrylates.
- 6. A shape memory polymer composition according to claim 1 wherein one of said monomers has a high glass transition temperature and is selected from the group consisting of vinyl chloride, vinyl butyral, vinyl fluoride, vinyl pivalate, 2-vinylnaphthalene, 2-vinylpyridine, 4-vinyl pyridine, vinylpyrrolidone, n-vinyl carbazole, vinyl toluene, vinyl benzene (styrene), methyl methacrylate, ethyl methacrylate, acryl-functionalized POSS, and methacryl-functionalized POSS and said other monomer has a low glass transition temperature and is selected from the group consisting of vinyl ethyl ether, vinyl laurate, vinyl methyl ether, vinyl propionate, alkyl acrylates and alkyl methacrylates.
- 7. A shape memory polymer composition according to claim 1 wherein said high glass transition temperature monomer is methyl methacrylate and said low glass transition monomer is butyl methacrylate.
- 8. A shape memory polymer composition according to claim 1 wherein the glass transition temperature of the copolymer is adjustable to from 20-110° C.
- 9. A shape memory polymer composition according to claim 1 wherein a multifunctional monomer is incorporated into the copolymerization reaction whereby the copolymer is crosslinked during the polymerization to form a thermoset network.
- 10. A shape memory polymer composition according to claim 9 wherein said multifunctional monomer is a disfunctional monomer.
- 11. A shape memory polymer composition according to claim 10 wherein the difunctional monomer is an alkyl dimethacrylate.
- 12. A shape memory polymer composition according to claim 10 wherein said multifunctional monomer is selected from the group consisting of ethylene glycol dimethacrylate, diethylene glycol dimethacrylate, polyethylene glycol 200 dimethacrylate, polyethylene glycol 600 dimethacrylate; propoxylated neopentyl glycol diacrylate, 1,3-butanediol dimethacrylate, 1,4-butanediol diacrylate, 1,4-butanediol dimethacrylate, glyceryl proxy triacrylate, pentaerythritol tetraacrylate, tetraethylene gycols dimethacrylate and multacryl and multimethacryl-POSS.
- 13. A shape memory polymer composition according to claim 7 wherein the ratio of methylmethacrylate to butylmethacrylate is from 20-80:80-20% methylmethacrylate to butylmethacrylate.
- 14. A shape memory polymer composition according to claim 7 wherein an increase in the methylmethacrylate content in the copolymer results in an increase in the glass transition temperature of the copolymer.
- 15. A shape memory polymer composition obtained by copolymerizing two different monomers, the homopolymers of each of which would have a different glass transition temperature in the presence of a difunctional monomer so that the resulting copolymer is crosslinked and has a glass transition temperature between that of said homopolymers.
- 16. A shape memory polymer composition according to claim 15 wherein the glass transition temperature of one of the homopolymers is about 20° C., and that of the other homopolymers is about 120° C.
- 17. A shape memory polymer composition according to claim 15 wherein the difunctional monomer is tetraethylene diglycol dimethacrylate.
- 18. A shape memory polymer composition according to claim 17 wherein the tetraethylene glycol dimethacrylate content defines the rubber modulus of the polymer and is present in an amount of up to 20%.
- 19. A shape memory polymer composition according to claim 18 wherein said tetraethylene glycol dimethacrylate is present in an amount of from 0.5 to 10%.
- 20. A method of forming a composition with a shape in memory comprising the steps of:
a) preparing a copolymer comprising two different monomers, the homopolymers of each of which would have different glass transition temperatures, in the presence of a difunctional monomer to provide a copolymer which is crosslinked and which has a glass transition temperature between that of the two homopolymers; b) shaping the composition to a first shape while heating to form a deformed sample; c) quenching the deformed sample in cold water, d) heating the quenched sample in warm water whereby the deformed sample is returned to its original shape.
- 21. The Method according to claim 20 wherein step a) is conducted using UV illumination.
- 22. A medical device or component of a medical device comprising the shape memory polymer composition of claim 1.
- 23. A medical device or component of a medical device according to claim 22 which is a member selected from the group consisting of stents, catheters, prosthetics, grafts, screws, pins, plates, pumps and meshes.
- 24. An optically transparent shape memory polymer composition obtained by copolymerizing two different monomers, the homopolymers of which each would have a different glass transition temperature to produce a copolymer having a glass transition temperature between that of the two homopolymers.
- 25. An optically transparent shape memory polymer composition according to claim 24 wherein the copolymer is dyeable.
- 26. An optically transparent shape memory polymer composition according to claim 24 wherein the copolymer is colorless.
- 27. An optically transparent shape memory polymer composition according to claim 24 which can be cast, extruded or molded.
- 28. An optically transparent shape memory polymer composition according to claim 24 for use as an optical shutter for thermal sensing.
- 29. An optically transparent shape memory polymer composition according to claim 24 for use in reversible embossing for information storage or for microfluidic devices.
- 30. An optically transparent shape memory polymer composition according to claim 24 for use in deployable structures with complex shape tents.
- 31. An optically transparent shape memory polymer composition according to claim 24 for use in eyeglasses.
- 32. An adhesive comprising a shape memory polymer composition according to claim 6.
- 33. A shape memory polymer composition according to claim 6 in the form of a film.
- 34. A shape memory polymer composition according to claim 6 in the form of a coating.
- 35. A shape memory polymer composition according to claim 6 in the form of a solid casting.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority from provisional application Serial No. 60/377,544 filed May 2, 2002 which application is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60377544 |
May 2002 |
US |