Thermoplastic Multilayer Article
A multilayer article including a thermoplastic layer having a first surface and a second surface opposite the first surface and a base layer have a first base surface and a second base surface opposite the first base surface, wherein the first base surface of the base layer is permanently bonded to the second surface of the thermoplastic layer, wherein the thermoplastic layer has a first glass transition temperature, T g 1 , and wherein the multilayer article is rigid at temperatures less than T g 1 and is flexible at temperatures greater than T g 1 .
1 . A multilayer article comprising:
a thermoplastic layer having a first surface and a second surface opposite the first surface; and
a base layer having a first base surface and a second base surface opposite the first base surface;
wherein the first base surface of the base layer is permanently bonded to the second surface of the thermoplastic layer, wherein the thermoplastic layer comprises a first thermoplastic material having a first glass transition temperature, T g 1 ; and wherein the multilayer article is rigid at temperatures less than T g 1 and is flexible at temperatures greater than T g 1 .
2 . The multilayer article of claim 1 , further comprising a plurality of thermoplastic layers and plurality of base layers arranged in alternating layers.
3 . The multilayer article of claim 1 , wherein the thermoplastic layer comprises a material selected from the group consisting of: polyethylene terephthalate, polycaproamides, polycaprolactones, polytrimethylene carbonates, polyglycolide-co-trimethylene carbonates, poly(PBA-carbonates), poly(beta-hydroxybutyrate), polyhydroxybutyrate-hydroxyvaleric acids, and combinations thereof.
4 . The multilayer article of claims 1 , wherein the base layer comprises a biocompatible metallic material.
5 . The multilayer article of claim 4 , wherein the biocompatible metallic material comprises a material selected from the group consisting of: titanium, titanium alloys, cobalt-chrome alloys, cobalt-chrome-molybdenum alloys, molybdenum alloys, tantalum, nitinol, GUMMETAL®, stainless steel and spring steel.
6 . The multilayer article of claim 1 , wherein the thermoplastic layer and the base layer are permanently bonded by a diamond like carbon interlayer positioned between the thermoplastic layer and the base layer.
7 . The multilayer article of claims 1 , wherein the base layer comprises a second thermoplastic material having a second glass transition temperature, T g II , which is at least 50° C. higher than T g 1 .
8 . The multilayer article of claim 7 , wherein the second thermoplastic material comprises a material selected from the group consisting of: polyethylene terephthalate, polycarbonate, polyaryl ether ketone, polyether ether ketone, polyether ketone ketone, fiber reinforced polyether ether ketone, fiber reinforced polyether ketone ketone, and combinations thereof.
9 . The multilayer article of claim 7 , wherein an interface between the first thermoplastic material when molten and the second thermoplastic material forms a contact angle of less than 5°.
10 . The multilayer article of claim 1 , wherein the multilayer article has a thickness ranging from 0.1 mm to 3.0 mm.
11 . The multilayer article of claim 1 , wherein the multilayer article has a thickness ranging from 0.1 mm to 1.5 mm.
12 . A bone plate made from the multilayer article of claim 1 .
13 . A thermally releasing spring element having a coil spring shape made from the multilayer article of claim 1 .
14 . A method for forming a multilayer article comprising the steps of:
providing a base layer having a first base surface and a second base surface opposite the first base surface;
applying a thermoplastic layer to the first base surface of the base layer to form a multilayer article, the thermoplastic layer having a melting temperature, T m , and a first glass transition temperature, T g 1 ;
applying pressure to the multilayer article;
heating the multilayer article to at least 10 degrees C. over T. for at least 1 minute to permanently affix the thermoplastic layers to the surface of the base layer, and
wherein the multilayer article is rigid at temperatures less than T g 1 and is flexible at temperatures greater than T g 1 .
15 . The method of claim 14 , wherein the base layer comprises a biocompatible metallic material.
16 . The method of claim 15 , further comprising the steps of:
coating the surface of the biocompatible metallic material with diamond like carbon to form a diamond like carbon interlayer positioned between the thermoplastic layer and the base layer; and
activating the diamond like carbon layer with oxygen plasma.
17 . The method of claim 14 , wherein the base layer comprises a second thermoplastic material having a second glass transition temperature, T g II , which is at least 50° C. higher than T g 1 .
18 . The method of claim 14 , further comprising the steps of:
cooling the multilayer article, and
shaping the multilayer article to form a deformable implant.
19 . The method of claim 14 , further comprising the step of:
rolling the multilayer article to form a coil spring shape.
20 . A method for securing a plurality of bone fragments comprising the steps of:
providing a laminate plate comprising: alternating layers of a thermoplastic layer and a base layer, the thermoplastic layer having a first surface and a second surface opposite the first surface and the base layer have a first base surface and a second base surface opposite the first base surface, wherein the first base surface of the base layer is permanently bonded to the second surface of the thermoplastic layer, wherein the thermoplastic layer has a first glass transition temperature, T g 1 ; and
wherein the multilayer article is rigid at temperatures less than T g 1 and is flexible at temperatures greater than T g 1 ;
heating the laminate plate to a temperature greater than T g 1 to deform the laminate plate, wherein the laminate plate is deformable in at least one direction; and
securing the deformed laminate plate to the plurality of bone fragments.
21 . The method of claim 20 , wherein heating step is repeated a plurality of times.
22 . A method of fixing a spring element in a cavity comprising:
providing a thermally releasing spring element, said thermally releasing spring element comprising a coiled multilayer article of alternating layers of a thermoplastic layer and a base layer, the thermoplastic layer having a first surface and a second surface opposite the first surface and the base layer have a first base surface and a second base surface opposite the first base surface, wherein the first base surface of the base layer is permanently bonded to the second surface of the thermoplastic layer, wherein the thermoplastic layer has a first glass transition temperature, T g 1 ; and
wherein the multilayer article is rigid at temperatures less than T g 1 and is flexible at temperatures greater than T g 1 ;
inserting the thermally releasing spring element into a cavity; and
heating the thermally releasing spring element to a temperature greater than T g 1 , wherein heating the thermally releasing spring element causes the multilayer to at least partially uncoil in the cavity.
23 . The method of claim 22 , wherein the coiled multilayer article is coiled around a central rod.