Claims
- 1. A coating for an implant, comprising:
a first layer disposed on the implant and having a first thermal expansion coefficient and comprising a material selected from the group consisting of oxide compounds, nitride compounds, boride compounds, carbide compounds, and mixtures of two or more of the foregoing materials; and a second layer disposed on the first layer having a second thermal expansion coefficient and comprising an apatite having greater than about 90% crystallinity and a binder that is inert in body fluids, wherein the first and second thermal expansion coefficients have a difference of less than or equal to about 1×10−6/° C.
- 2. The coating of claim 1, wherein the first layer comprises a material selected from the group consisting of Al2O3, Fe2O3, Y2O3, Cr2O3, MnO2, TiO2, SiO2, ZrO2, HfO2, TiN, CrN, ZrN, TiON, TiAlON, TiC, CrC, ZrC, TiCN, TiAlCN, TiB2, CrB, ZrB2, and combinations two or more of the foregoing materials.
- 3. The coating of claim 2, wherein the first layer comprises TiN.
- 4. The coating of claim 1, wherein the apatite comprises an apatite selected from the group consisting of hydroxyapatite, fluorapatite, hydroxyfluorapatite, and combinations of two or more of the foregoing apatites.
- 5. The coating of claim 1, wherein the apatite comprises hydroxyapatite.
- 6. The coating of claim 5, wherein the hydroxyapatite has a maximum grain size of about 100 nanometers.
- 7. The coating of claim 5, wherein the hydroxyapatite has greater than about 90% purity.
- 8. The coating of claim 1, wherein the binder comprises a glass comprising greater than 67.8 wt % SiO2 based on the total weight of the glass.
- 9. The coating of claim 8, wherein the glass comprises 67.8 wt % to about 80 wt % SiO2, about 4 wt % to about 6 wt % Al2O3, about 6 wt % to about 12 wt % B2O3, about 8 wt % to about 15 wt % (Na2O,K2O, and Li2O), and about 0.5 wt % to about 3.0 wt % (ZrO2+TiO2) based on the total weight of the glass.
- 10. The coating of claim 1, wherein the second layer comprises about 51 wt % to about 80 wt % of apatite, and about 20 wt % to about 80 wt % of the binder based on the total weight of the second layer.
- 11. The coating of claim 1, wherein the second layer comprises a concentration gradient of the apatite, wherein the gradient comprises about 1% to about 30% apatite at a side adjacent the first layer and about 100% apatite at a side adjacent a coating-tissue interface, and wherein the gradient is perpendicular to the implant.
- 12. The coating of claim 1, wherein the first layer has a thickness of about 0.5 micrometer to about 10 micrometers.
- 13. The coating of claim 1, wherein the second layer has a thickness of about 5 micrometers to about 100 micrometers.
- 14. A coating for an implant, comprising:
a first layer comprising a material selected from the group consisting of oxide compounds, nitride compounds, boride compounds, carbide compounds, and mixtures of two or more of the foregoing materials; and a second layer disposed on the first layer comprising hydroxyapatite and a glass, wherein the hydroxyapatite has greater than about 90% crystallinity, and wherein the glass comprises greater than 67.8% SiO2 based on the total weight of the glass.
- 15. The coating of claim 14, wherein the coating further comprises a third layer adjacent to the second layer, and wherein the third layer comprises hydroxyapatite.
- 16. The coating of claim 15, wherein the third layer further comprises a physiologically active agent.
- 17. The coating of claim 16, wherein the physiologically active agent comprises an agent selected from the group consisting of antibiotics, anti-infective agents, antiviral agents, anti-tumoral agents, antipyretics, analgesics, anti-inflammatory agents, therapeutic agents for osteoporosis, enzymes, cytokines, anticoagulants, polysaccharides, collagen, cells, and combinations of two or more of the foregoing active agents.
- 18. The coating of claim 17, wherein the physiologically active agent comprises a controlled-release formulation.
- 19. The coating of claim 18, wherein the controlled release formulation comprises a biodegradable polymer.
- 20. The coating of claim 19, wherein the biodegradable polymer is selected from the group consisting of polylactic acid, copoly(lactic/glycolic) acid and combinations of two or more of the foregoing biodegradable polymers.
- 21. A coated implant, wherein the coating comprises:
a first layer disposed on the implant and comprising a first side adjacent to the implant and a second side adjacent to a second layer, wherein the first layer comprises a material selected from the group consisting of oxide compounds, nitride compounds, boride compounds, carbide compounds, and mixtures of two or more of the foregoing materials; and a second layer disposed on the first layer and comprising a first side adjacent the first layer, wherein the second layer comprises an apatite and a binder, wherein the apatite has greater than about 90% crystallinity, and wherein the binder is inert in body fluids; wherein the first and second layers have a difference in a thermal expansion coefficient of less than or equal to about 1×10−6/° C.
- 22. The coated implant of claim 21, wherein the first layer comprises a material selected from the group consisting of Al2O3, Fe2O3, Y2O3, Cr2O3, MnO2, TiO2, SiO2, ZrO2, HfO2, TiN, CrN, ZrN, TiON, TiAlON, TiC, CrC, ZrC, TiCN, TiAlCN, TiB2, CrB, ZrB2, and combinations of two or more of the foregoing materials.
- 23. The coated implant of claim 22, wherein the first layer comprises TiN.
- 24. The coated implant of claim 21, wherein the apatite comprises an apatite selected from the group consisting of hydroxyapatite, fluorapatite, hydroxyfluorapatite, and combinations of two or more of the foregoing apatites.
- 25. The coated implant of claim 24, wherein the apatite comprises hydroxyapatite.
- 26. The coated implant of claim 25, wherein the hydroxyapatite has a maximum grain size of about 100 nanometers.
- 27. The coated implant of claim 25, wherein the hydroxyapatite has greater than about 90% purity.
- 28. The coated implant of claim 21, wherein the binder comprises a glass comprising greater than 67.8 wt % SiO2 based on the total weight of the glass.
- 29. The coated implant of claim 28, wherein the glass comprises 67.8 wt % to about 80 wt % SiO2, about 4 wt % to about 6 wt % Al2O3, about 6 wt % to about 12 wt % B2O3, about 8 wt % to about 15 wt % (Na2O, K2O, and Li2O), and about 0.5 wt % to about 3.0 wt % (ZrO2+TiO2) based on the total weight of the glass.
- 30. The coated implant of claim 21, wherein the second layer comprises about 51 wt % to about 80 wt % of apatite, and about 20 wt % to about 80 wt % of the binder based on the total weight of the second layer.
- 31. The coated implant of claim 21, wherein the second layer comprises a concentration gradient of the apatite, wherein the gradient comprises about 1% to about 30% apatite at a side adjacent the first layer and about 100% apatite at a side adjacent a coating-tissue interface.
- 32. The coated implant of claim 21, wherein the first layer has a thickness of about 0.5 micrometers to about 10 micrometers.
- 33. The coated implant of claim 21, wherein the second layer has a thickness of about 5 micrometers to about 100 micrometers.
- 34. The coated implant of claim 21, wherein the implant comprises a metal selected from the group consisting of Ti, Ti6Al4V, CrCoMo, and stainless steel alloys.
- 35. The coated implant of claim 21, wherein the implant is a prosthesis selected from the group consisting of dental, hip, knee, spine, ankle, finger, hand, and leg.
- 36. A coated implant, wherein the coating comprises:
a first layer disposed on the implant and comprising a first side adjacent to the implant and a second side adjacent to a second layer, wherein the first layer comprises a material selected from the group consisting of oxide compounds, nitride compounds, boride compounds, carbide compounds, and mixtures of two or more of the foregoing materials; and a second layer disposed on the first layer and comprising a first side adjacent the first layer, wherein the second layer comprises hydroxyapatite and a glass, wherein the hydroxyapatite has greater than about 90% crystallinity, and wherein the glass comprises greater than 67.8 wt % SiO2 based on the total weight of the glass.
- 37. The coated implant of claim 36, wherein the coating further comprises a third layer adjacent to the second layer, and wherein the third layer comprises hydroxyapatite.
- 38. The coated implant of claim 37, wherein the third layer further comprises a physiologically active agent.
- 39. The coated implant of claim 38, wherein the physiologically active agent comprises an agent selected from the group consisting of antibiotics, anti-infective agent, antiviral agents, anti-tumoral agents, antipyretics, analgesics, anti-inflammatory agents, therapeutic agents for osteoporosis, enzymes, cytokines, anticoagulants, polysaccharides, collagen, cells, and combinations of two or more of the foregoing active agents.
- 40. The coated implant of claim 39, wherein the physiologically active agent comprises a controlled-release formulation.
- 41. The coated implant of claim 40, wherein the controlled release formulation comprises a biodegradable polymer.
- 42. The coated implant of claim 41, wherein the biodegradable polymer is selected from the group consisting of polylactic acid, copoly(lactic/glycolic) acid and combinations of two or more of the foregoing biodegradable polymers.
- 43. The coated implant of claim 36, wherein the coated implant is soaked in simulated body fluid for two months and wherein the coating exhibits no calcium release, no pH change and no weight loss.
- 44. The coated implant of claim 36, wherein the coated implant is soaked in simulated body fluid for two months and wherein the coating has a tensile strength of greater than or equal to about 60 MPa.
- 45. The coated implant of claim 36, wherein the coated implant is soaked in simulated body fluid for two months and wherein the coating has a corrosion current density of less than about 1×10−6 mA/cm2.
- 46. A method of making a coated implant, comprising:
providing a metallic implant; depositing a first layer on the implant, wherein the first layer comprises a material selected from the group consisting of oxide compounds, nitride compounds, boride compounds, carbide compounds, and mixtures of two or more of the foregoing materials; forming at least one slurry comprising an apatite and a binder, wherein the apatite has greater than about 90% crystallinity, and wherein the binder is inert in body fluids; depositing the slurry on the first layer to form a green coating; and sintering the green coating to form a second layer.
- 47. The method of claim 46, wherein depositing the first layer comprises anolization, chemical vapor deposition or physical vapor deposition.
- 48. The method of claim 46, wherein the first layer comprises a material selected from the group consisting of Al2O3, Fe2O3, Y2O3, Cr2O3, MnO2, TiO2, SiO2, ZrO2, HfO2, TiN, CrN, ZrN, TiON, TiAlON, TiC, CrC, ZrC, TiCN, TiAlCN, TiB2, CrB, ZrB2, and combinations of two or more of the foregoing materials.
- 49. The method of claim 48, wherein the first layer comprises TiN.
- 50. The method of claim 46, wherein the apatite comprises hydroxyapatite.
- 51. The method of claim 50, wherein the hydroxyapatite has a maximum grain size of about 100 nanometers.
- 52. The method of claim 46, wherein the binder comprises a glass comprising greater than 67.8 wt % SiO2.
- 53. The coating of claim 52, wherein the glass comprises 67.8 wt % to about 80 wt % SiO2, about 4 wt % to about 6 wt % Al2O3, about 6 wt % to about 12 wt % B2O3, about 8 wt % to about 15 wt % (Na2O, K2O, and Li2O), and about 0.5 wt % to about 3.0 wt % (ZrO2+TiO2) based on the total weight of the glass.
- 54. The method of claim 46, wherein the slurry comprises about 30 wt % to about 100 wt % apatite.
- 55. The method of claim 46, wherein depositing the slurry comprises electrophoretic deposition, air spray or brush coating.
- 56. The method of claim 46, further comprising forming a plurality of slurries, wherein the plurality of slurries comprises 30 wt % to 100 wt % apatite.
- 57. The method of claim 56, wherein depositing the slurry comprises depositing a plurality of slurries, wherein each slurry deposited comprises a higher percentage of apatite than the previous slurry.
- 58. The method of claim 57, wherein a final deposited slurry comprises about 100% apatite.
- 59. The method of claim 46, wherein sintering is performed at a temperature of less than or equal to about 975° C.
- 60. The method of claim 46, wherein sintering is performed by first heating to a temperature of about 500° C. to about 800° C. in the presence of oxygen and then heating to a temperature of about 850° C. to about 975° C.
- 61. The method of claim 46, wherein the metallic implant comprises a metal selected from the group consisting of Ti, Ti6Al4V, CrCoMo, and stainless steel alloys.
- 62. The method of claim 46, wherein the metallic implant comprises a prosthesis selected from the group consisting of dental, hip, knee, spine, ankle, finger, hand, and leg.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH & DEVELOPMENT
[0001] This invention was made with government support under Grant No. NIH 1R43AR47278-02 awarded by The United States National Institute of Health. The United States Government has certain rights to this invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60328742 |
Oct 2001 |
US |