PIEZOELECTRIC COATED IMPLANTS AND METHODS OF USING PIEZOELECTRIC COATED IMPLANTS TO REPAIR BONE STRUCTURES
Various embodiments of implant systems and related apparatus, and methods of operating the same are described herein. In various embodiments, an implant for interfacing with a bone structure includes a web structure, including a space truss, configured to interface with human bone tissue. The space truss includes two or more planar truss units having a plurality of struts joined at nodes. Implants are coated with, or have struts formed from, a piezoelectric material to enhance bone growth around and through the implant.
1 - 15 . (canceled)
16 . An implant for interfacing with a bone structure, comprising:
a web structure comprising a plurality of struts joined at nodes, wherein the web structure is configured to interface with human bone tissue, wherein at least some of the struts are formed, at least in part, of a piezoelectric hydroxyapatite composition, the piezoelectric hydroxyapatite composition including a hydroxyapatite and a piezoelectric effect enhancing material, and wherein a physical property of the at least some struts formed of the piezoelectric hydroxyapatite composition is predetermined before implantation such that, after implantation, said struts undergo a minimum change in length when in contact with the human bone tissue.
17 . The implant of claim 16 , wherein the minimum change in length is a change in length of about 0.000125%.
18 . The implant of claim 16 , wherein said struts undergo a change in length when in contact with the human bone tissue of between about 0.000125% and about 0.0005%.
19 . The implant of claim 16 , wherein the piezoelectric effect enhancing material is piezoelectric ceramic material.
20 . The implant of claim 19 , wherein the piezoelectric ceramic material is selected from the group consisting of barium titanate (BaTiO 3 ), potassium niobate (KNbO 3 ), sodium tungstate (Na 2 WO 3 ), barium sodium niobate (Ba 2 NaNbO 5 ), zinc oxide (ZnO), sodium potassium niobate (Na, K)NbO 3 , bismuth ferrite (BiFeO 3 ), sodium niobite (NaNbO 3 ), bismuth titanate (Bi 4 Ti 3 O 12 ), and sodium bismuth titanate (NaBi(TiO 3 ).
21 . The implant of claim 19 , wherein the piezoelectric ceramic material is barium titanate.
22 . The implant of claim 16 , wherein the piezoelectric effect enhancing material is collagen.
23 . The implant of claim 16 , wherein the hydroxyapatite is doped with a conductive dopant.
24 . The implant of claim 23 , wherein the conductive dopant includes at least one of gold, silver, cesium, zinc, or silicon.
25 . The implant of claim 16 , wherein the physical property of the at least some struts is a diameter, a length, a density, or a material of the struts.
26 . The implant of claim 16 , wherein the physical property of the at least some struts is predetermined to provide a predetermined amount of piezoelectric effect in the at least some struts when said struts are in contact with the human bone tissue.
27 . The implant of claim 16 , wherein the web structure comprises a space truss comprising two or more planar truss units.
28 . The implant of claim 16 , wherein the web structure comprises at least three struts formed into a triangular truss structure.
29 . A method of repairing a bone structure, comprising:
obtaining an implant, the implant comprising a web structure comprising a plurality of struts joined at nodes, wherein at least some of the struts are formed, at least in part, of a piezoelectric hydroxyapatite composition, the piezoelectric hydroxyapatite composition including a hydroxyapatite and a piezoelectric effect enhancing material, and wherein a physical property of the at least some struts formed of the piezoelectric hydroxyapatite composition is predetermined before implantation such that, after implantation, said struts undergo a minimum change in length when in contact with the human bone tissue;
coupling the implant to the bone structure such that the web structure interfaces with human bone tissue; and
allowing the at least some struts formed of the piezoelectric hydroxyapatite composition to undergo the minimum change in length.
30 . An implant system, comprising:
a web structure comprising a plurality of struts joined at nodes, wherein the web structure is configured to interface with human bone tissue, wherein at least some of the struts are formed, at least in part, of a piezoelectric hydroxyapatite composition, the piezoelectric hydroxyapatite composition including a hydroxyapatite and a piezoelectric effect enhancing material, wherein a first portion of the at least some of the struts have a physical property with a first value that is different from a second value of the physical property for a second portion of the at least some of the struts, and wherein, after implantation, the struts in the first portion undergo a different piezoelectric effect than the struts in the second portion based on a difference between the first value and the second value of the physical property.
31 . The implant of claim 30 , wherein the physical property of the at least some struts is a diameter, a length, a density, or a material of the struts.
32 . The implant of claim 30 , wherein the piezoelectric effect enhancing material is piezoelectric ceramic material.
33 . The implant of claim 30 , wherein the piezoelectric effect enhancing material is collagen.
34 . The implant of claim 30 , wherein the hydroxyapatite is doped with a conductive dopant.
35 . The implant of claim 34 , wherein the conductive dopant includes at least one of gold, silver, cesium, zinc, or silicon.