IP Library › Granted Patent US 8,257,835
Granted Patent B2
US 8,257,835 · App. 12/296,315 · Granted Sep 4, 2012

Ceramic metal composite for orthopaedic implants

Assignee: Smith & Nephew, Inc.
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Quick Facts
Patent No.
US 8,257,835
App. No.
12/296,315
Granted
Sep 4, 2012
Kind
B2
Abstract

The invention relates to an orthopedic implant made of a ceramic metal composite. The composite ( 28, 48, 54 ) includes one phase that is a biocompatible metal or metal alloy and a second phase of ceramic particles examples of which include carbides, nitrides and/or oxides. In some embodiments, the implant comprises a homogeneous ceramic layer ( 24 ) as part of a multi-layered composition. In some embodiments, the multilayered composition comprises a homogeneous metal layer ( 32 ).

Claims (21)

1. An orthopaedic implant component comprising:

a unitary multilayered composition having a surface layer of a homogenous ceramic wherein an average free distance between ceramic particles is less than the average size of the ceramic particles, and a subsurface layer immediately below the surface layer, the subsurface layer comprising a ceramic and a metallic species.

2. The implant component of claim 1 , wherein said ceramic within the subsurface layer is selected from the group consisting of alumina, zirconia, chromium carbide, chromium nitride, silicon carbide, silicon nitride, titanium carbide, zirconium carbide, zirconium nitride, tantalum carbide, tungsten carbide, and any combination thereof.

3. The implant component of claim 1 , wherein said metallic species is selected from the alloy groups consisting of cobalt-chromium, titanium-aluminum-vanadium, zirconium-niobium and tantalum and any combination thereof.

4. The implant component of claim 1 , wherein said subsurface layer forms a boundary with said surface layer.

5. The implant component of claim 4 , wherein said surface layer of homogeneous ceramic has a thickness of about 25 μm.

6. The implant component of claim 4 , wherein said surface layer is 100% alumina.

7. The implant component of claim 4 , wherein said surface layer is 80% alumina by volume and 20% zirconia by volume.

8. The implant component of claim 4 , wherein said subsurface layer is a graded layer wherein the level of ceramic decreases from an initial concentration at the boundary with said surface layer to depths further from said boundary with said surface layer.

9. The implant component of claim 8 , further comprising a homogenous metallic substrate layer immediately below said graded layer.

10. The implant component of claim 9 , wherein said metallic substrate layer is a homogeneous cobalt-chromium alloy.

11. The implant component of claim 4 , wherein a concentration at said boundary of said ceramic in said subsurface layer is 98% by volume.

12. The implant component of claim 1 , wherein said subsurface layer is a graded layer wherein the level of ceramic decreases from an initial concentration at said surface layer to depths further from said surface layer.

13. The implant component of claim 12 , wherein a concentration at said surface of said ceramic is 98% by volume.

14. The implant component of claim 1 , wherein said ceramic of the subsurface layer comprises alumina.

15. The implant component of dam 14 , wherein said ceramic is a mixture of alumina and zirconia.

16. The implant component of claim 1 , wherein said implant component comprises a hip implant.

17. The implant component of claim 1 , wherein said implant component comprises a knee implant.

18. The implant component of claim 1 , wherein the average free distance between ceramic particles of the subsurface layer is less than half of the average size of said ceramic particles.

19. The implant component of claim 1 , wherein the average free distance between ceramic particles of the subsurface layer is less than the average size of said ceramic particles.

20. The implant component of claim 1 , wherein the average free distance between ceramic particles of the homogeneous layer is less than half of the average size of said ceramic particles.

Continuity (2)
Provisional Application 60790918 · Apr 11, 2006
Related Publication 20090187255A1 · Jul 23, 2009