IP Library Granted Patent US 10,342,658
Granted Patent B2
US 10,342,658 · App. 15/583,766 · Granted Jul 9, 2019

Methods of making durable multi-layer high strength polymer composite suitable for implant and articles produced therefrom

Inventors: William C. Bruchman (Camp Verde, AZ); Paul D. Gassler (Lincoln University, PA); Cody L. Hartman (Flagstaff, AZ); Peter J. Walsh (Elkton, MD)
Assignee: W. L. Gore & Associates, Inc.
A61F2/2415A61F2/2418A61L27/26A61L27/56C09J123/28A61F2210/0076A61L2430/20
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Quick Facts
Patent No.
US 10,342,658
App. No.
15/583,766
Granted
Jul 9, 2019
Kind
B2
Abstract

A thin, biocompatible, high-strength, composite material is disclosed that is suitable for use in various implanted configurations. The composite material maintains flexibility in high-cycle flexural applications, making it particularly applicable to high-flex implants such as heart pacing lead or heart valve leaflet. The composite material includes at least one porous expanded fluoropolymer layer.

Claims (31)

1. A method of forming a leaflet of an implantable article for regulating blood flow direction in a human patient, the method comprising:

providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm and an elastomer present in the pores;

bringing one layer of the sheet of the composite material into contact with additional layers of the sheet of the composite material;

bonding the layers of the composite material together via the elastomer; and forming a leaflet from the bonded layers of composite material.

2. The method of claim 1 , wherein bringing one layer of the sheet of the composite material into contact with additional layers of the sheet of the composite material comprises wrapping the sheet of the composite material generally circumferentially about a mandrel.

3. The method of claim 1 , wherein bringing one layer of a sheet of the composite material into contact with additional layers of the sheet of the composite material comprises bringing one layer of a sheet of the composite material into contact with additional layers of the sheet of the composite material to provide a ratio of thickness (μm) to number of fluoropolymer layers of less than 5.

4. The method of claim 1 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 1 μm.

5. The method of claim 1 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 0.10 μm.

6. The method of claim 1 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that are defined by fibrils, wherein a diameter of a majority of the fibrils is less than about 1 μm.

7. The method of claim 1 , wherein providing a composite material having an elastomer comprises providing a composite material having an elastomer that is a fluoroelastomer.

8. The method of claim 1 , wherein providing a composite material having an elastomer comprises providing a composite material having an elastomer that is a TFE/PMVE copolymer.

9. The method of claim 1 , wherein providing a composite material having an elastomer comprises providing a composite material having an elastomer that is a TFE/PMVE copolymer, wherein the TFE/PMVE copolymer comprises essentially of between about 40 and 80 weight percent perfluoromethyl vinyl ether and complementally 60 and 20 weight percent tetrafluoroethylene.

10. The method of claim 1 , wherein providing a composite material having an elastomer comprises providing a composite material having an elastomer that is a urethane.

11. A method of forming a leaflet of an implantable article for regulating blood flow direction in a human patient, the method comprising:

providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm and an elastomeric material present in the pores;

bringing one layer of the composite material into contact with additional layers of the composite material;

bonding the layers of composite material together via the elastomeric material; and forming a leaflet from the bonded layers of composite material.

12. The method of claim 11 , wherein bringing one layer of the sheet of a composite material into contact with additional layers of the sheet of the composite material comprises bringing one layer of a sheet of the composite material into contact with additional layers of the sheet of the composite material to provide a ratio of thickness (μm) to number of fluoropolymer layers of less than 5.

13. The method of claim 11 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 1 μm.

14. The method of claim 11 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 0.10 μm.

15. The method of claim 11 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that are defined by fibrils, wherein a diameter of a majority of the fibrils is less than about 1 μm.

16. The method of claim 11 , wherein providing a composite material having an elastomer comprises providing a composite material having an elastomer that is a fluoroelastomer.

17. The method of claim 11 , wherein providing a composite material having an elastomeric material comprises providing a composite material having an elastomeric material that is a TFE/PMVE copolymer.

18. A method of forming a leaflet of an implantable article for regulating blood flow direction in a human patient, the method comprising:

providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm and TFE/PMVE present in the pores;

bringing one layer of the composite material into contact with additional layers of the composite material;

bonding the layers of composite material together via the TFE/PMVE; and forming a leaflet from the bonded layer of the composite material.

19. The method of claim 18 , wherein bringing one layer of a sheet of the composite material into contact with additional layers of the sheet of the composite material comprises bringing one layer of a sheet of the composite material into contact with additional layers of the sheet of the composite material to provide a ratio of thickness (μm) to number of fluoropolymer layers of less than 5.

20. The method of claim 18 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 1 μm.

21. The method of claim 18 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 5 μm comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that have a pore size that is less than 0.10 μm.

22. The method of claim 18 , wherein providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores comprises providing a sheet of a composite material having more than one fluoropolymer layer having a plurality of pores that are defined by fibrils, wherein a diameter of a majority of the fibrils is less than about 1 μm.

Continuity (6)
Division 13801701 · Mar 13, 2013
Continuation In Part 13485823 · May 31, 2012
Continuation In Part 13078774 · Apr 1, 2011
Provisional Application 61492324 · Jun 1, 2011
Related Publication 20170231758A1 · Aug 17, 2017
Related Publication 20190133759A9 · May 9, 2019
Cited By (1)
US 12,714,436