IP Library Granted Patent US 7,208,550
Granted Patent B2
US 7,208,550 · App. 10/683,558 · Granted Apr 24, 2007

Blends of amorphous and semicrystalline polymers having shape memory properties

Assignee: The University of Connecticut
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Quick Facts
Patent No.
US 7,208,550
App. No.
10/683,558
Granted
Apr 24, 2007
Kind
B2
Abstract

Blends of amorphous and semicrystalline polymers having shape memory properties were prepared by blending a crystalline polymer such as poly(vinylidene fluoride), polylactide, poly(hydroxxybutyrate), poly(ethylene glycol) polyethylene, polyethylene-co-vinyl acetate, poly(vinyl chloride), poly(vinylidene chloride) and copolymers of poly(vinylidene chloride) and poly(vinyle chloride) and an amorphous polymer such as poly(vinyl acetate), poly methyl acrylate, poly ethyl acrylate, atactic poly methyl methacrylate, isotactic poly methyl methacrylate, syndiotactic poly methyl methacrylate and other poly alkyl methacrylates. The method for preparing the polymeric materials and applications thereof, for example, as smart medical devices, are also disclosed.

Claims (31)

1. A shape memory polymeric material comprising a blend of a crystalline polymer selected from the group consisting of poly(vinylidene fluoride), polyglycolides, polylactide and copolymers thereof, poly(hydroxybutyrate), poly(ethylene glycol), polyethylene, polyethylene-co-vinyl acetate, poly(vinyl chloride), poly(vinylidene chloride) and copolymers of poly(vinylidene chloride) and poly(vinyl chloride) with an amorphous polymer selected from the group consisting of poly(vinyl acetate), poly(methyl acrylate), poly(ethyl acrylate), and atactic poly(methyl methacrylate);

wherein the shape memory polymeric material has

a melting temperature, T m , and

a glass transition temperature, T g , exceeding room temperature; and

wherein the shape memory polymeric material has rubber modulus and elasticity derived substantially from physical crosslinks formed by annealing the blend at a temperature greater than T g and less than T m .

2. A shape memory polymeric material according to claim 1 wherein said blend is of amorphous poly(vinyl acetate) and semicrystalline polylactide.

3. A shape memory polymeric material according to claim 1 wherein said blend is of amorphous polyvinyl acetate and crystalline poly(vinylidene fluoride).

4. A shape memory polymeric material according to claim 1 wherein said blend is of crystalline poly(vinylidene fluoride) and amorphous poly(methyl methacrylate).

5. A shape memory polymeric material according to claim 1 wherein said blend is of crystalline poly(vinylidene chloride) and amorphous poly(vinyl acetate).

6. An impression material for molding, duplication, rapid prototyping and dentistry prepared from a shape memory polymeric material comprising a blend of a crystalline polymer selected from the group consisting of poly(vinylidene fluoride), polyglycolides, polylactide and copolymers thereof, poly(hydroxybutyrate), poly(ethylene glycol), polyethylene, polyethylene-co-vinyl acetate, poly(vinyl chloride), poly(vinylidene chloride) and copolymers of poly(vinylidene chloride) and poly(vinyl chloride) with an amorphous polymer selected from the group consisting of poly(vinyl acetate), poly(methyl acrylate), poly(ethyl acrylate), and atactic poly(methyl methacrylate);

wherein the shape memory polymeric material has

a melting temperature, T m , and

a glass transition temperature, T g , exceeding room temperature; and

wherein the shape memory polymeric material has rubber modulus and elasticity derived substantially from physical crosslinks formed by annealing the blend at a temperature greater than T g and less than T m .

7. A temperature sensor prepared from a shape memory polymeric material characterized by a T g exceeding room temperature whose rubber modulus and elasticity are derived substantially from physical crosslinks comprising a blend of a crystalline polymer selected from the group consisting of poly(vinylidene fluoride), polyglycolides, polylactide and copolymers thereof, poly(hydroxybutyrate), poly(ethylene glycol), polyethylene, polyethylene-co-vinyl acetate, poly(vinyl chloride), poly(vinylidene chloride) and copolymers of poly(vinylidene chloride) and poly(vinyl chloride) with an amorphous polymer selected from the group consisting of poly(vinyl acetate), poly(methyl acrylate), poly(ethyl acrylate), and atactic poly(methyl methacrylate)

wherein the shape memory polymeric material has

a melting temperature, T m , and

a glass transition temperature, T g , exceeding room temperature; and

wherein the shape memory polymeric material has rubber modulus and elasticity derived substantially from physical crosslinks formed by annealing the blend at a temperature greater than T g and less than T m .

8. A heat sensitive seal prepared from a shape memory polymeric material characterized by a T g exceeding room temperature whose rubber modulus and elasticity are derived substantially from physical crosslinks comprising a blend of a crystalline polymer selected from the group consisting of poly(vinylidene fluoride), polyglycolides, polylactide and copolymers thereof, poly(hydroxybutyrate), poly(ethylene glycol), polyethylene, polyethylene-co-vinyl acetate, poly(vinyl chloride), poly(vinylidene chloride) and copolymers of poly(vinylidene chloride) and poly(vinyl chloride) with an amorphous polymer selected from the group consisting of poly(vinyl acetate), poly(methyl acrylate), poly(ethyl acrylate), and atactic poly(methyl methacrylate);

wherein the shape memory polymeric material has

a melting temperature, T m , and

a glass transition temperature, T g , exceeding room temperature; and

wherein the shape memory polymeric material has rubber modulus and elasticity derived substantially from physical crosslinks formed by annealing the blend at a temperature greater than T g and less than T m .

9. A large strain, large force actuator prepared from a shape memory polymeric material characterized by a T g exceeding room temperature whose rubber modulus and elasticity are derived substantially from physical crosslinks comprising a blend of a crystalline polymer selected from the group consisting of poly(vinylidene fluoride), polyglycolides, polylactide and copolymers thereof, poly(hydroxybutyrate), poly(ethylene glycol), polyethylene, polyethylene-co-vinyl acetate, poly(vinyl chloride), poly(vinylidene chloride) and copolymers of poly(vinylidene chloride) and poly(vinyl chloride) with an amorphous polymer selected from the group consisting of poly(vinyl acetate), poly(methyl acrylate), poly(ethyl acrylate), and atactic poly(methyl methacrylate);

wherein the shape memory polymeric material has

a melting temperature, T m , and

a glass transition temperature, T g , exceeding room temperature; and

wherein the shape memory polymeric material has rubber modulus and elasticity derived substantially from physical crosslinks formed by annealing the blend at a temperature greater than T g and less than T m .

10. A shape memory polymeric material according to claim 1 wherein the crystalline polymer is a polylactide copolymer selected from the group consisting of poly(D,L-lactide), poly(lactide-co-glycolide), poly(lactide-co-caprolactone), poly(lactide-co-1,5-dioxepan-2-one), and poly(lactide-co-trimethylene carbonate).

11. A shape memory polymeric material according to claim 1 , further comprising a plasticizer, particulate material, or a combination thereof.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 8, 2005
From: CAMPO, CHERYL J.
To: CONNECTICUT, UNIVERSITY OF
Reel/Frame 016314/0351 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2004
From: MATHER, PATRICK T.; LIU, CHANGDENG
To: UNIVERSITY OF CONNECTICUT
Reel/Frame 015094/0460 →
Continuity (4)
Provisional Application 6048832300 · Jul 18, 2003
Provisional Application 6046640100 · Apr 29, 2003
Provisional Application 6041802300 · Oct 11, 2002
Related Publication 20040122174A1 · Jun 24, 2004