Biological evaluation of micro-nanoporous layer on Ti–Ag alloy for dental implant
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Abstract
This study examined the biocompatibility of the micro-nanoporous layer formed on a titanium-silver (Ti–Ag) alloy. The porous layer was formed by grit-blasting and anodic oxidation. The surface of the porous layer was rougher and more hydrophilic compared to a simple machined specimen and the expressions of bone-related genes were greater for cells grown on the porous layer compared to that of cells cultured on a control surface. Also the bone-to-plate contact rate in vivo test was significantly improved for porous layer plate compare to simple machined specimen (P < 0.05). The porous layer on Ti–Ag alloy enhanced the peri-implant bone formation at the early healing stage and it was believed that this porous layer on the Ti–Ag alloy will be suitable for dental implant applications.
References
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© 2012, Carl Hanser Verlag, München
Articles in the same Issue
- Contents
- Contents
- Original Contributions
- Diffusion characteristics in the Cu–Ti system
- Hydrogen permeability with dislocation in low carbon, aluminium-killed, enamel-grade steels
- Numerical simulation of the evolution of primary and secondary Nb(CN), Ti(CN) and AlN in Nb-microalloyed steel during continuous casting
- Microstructure evolution in a 2618 aluminium alloy during creep-fatigue tests
- Microstructure characterization in the weld joint of a high nickel austenitic alloy and Cr18-Ni8 stainless steel
- The reoptimization of the binary Se–Te system
- Phase diagram of the Sm–Dy–Fe ternary system
- Thermophysical properties of solid phase Ti-6Al-4V alloy over a wide temperature range
- Determination of mechanical properties by nanoindentation in the case of viscous materials
- Mechanical properties and biodegradable behavior of Mg–6%Zn–Ca3(PO4)2 metal matrix composites in Ringer's solution
- Effect of Ti addition on the wettability of Al–B4C metal matrix composites
- Effect of pH on structure, morphology and optical properties of nanosized cupric oxide prepared by a simple hydrolysis method
- Metal-oxide-modified nanostructured carbon application as novel adsorbents for chromate ion removal from water
- Biological evaluation of micro-nanoporous layer on Ti–Ag alloy for dental implant
- Design of damage tolerance in high-strength steels
- Creep modeling and creep life estimation of Gr.91
- Influence of the layer architecture of DLC coatings on their wear and corrosion resistance
- Potential of mechanical surface treatment for mould and die production
- Short Communications
- Discussion of defect analysis of a Ti-6Al-4V alloy forging ring
- DGM News
- DGM News
Articles in the same Issue
- Contents
- Contents
- Original Contributions
- Diffusion characteristics in the Cu–Ti system
- Hydrogen permeability with dislocation in low carbon, aluminium-killed, enamel-grade steels
- Numerical simulation of the evolution of primary and secondary Nb(CN), Ti(CN) and AlN in Nb-microalloyed steel during continuous casting
- Microstructure evolution in a 2618 aluminium alloy during creep-fatigue tests
- Microstructure characterization in the weld joint of a high nickel austenitic alloy and Cr18-Ni8 stainless steel
- The reoptimization of the binary Se–Te system
- Phase diagram of the Sm–Dy–Fe ternary system
- Thermophysical properties of solid phase Ti-6Al-4V alloy over a wide temperature range
- Determination of mechanical properties by nanoindentation in the case of viscous materials
- Mechanical properties and biodegradable behavior of Mg–6%Zn–Ca3(PO4)2 metal matrix composites in Ringer's solution
- Effect of Ti addition on the wettability of Al–B4C metal matrix composites
- Effect of pH on structure, morphology and optical properties of nanosized cupric oxide prepared by a simple hydrolysis method
- Metal-oxide-modified nanostructured carbon application as novel adsorbents for chromate ion removal from water
- Biological evaluation of micro-nanoporous layer on Ti–Ag alloy for dental implant
- Design of damage tolerance in high-strength steels
- Creep modeling and creep life estimation of Gr.91
- Influence of the layer architecture of DLC coatings on their wear and corrosion resistance
- Potential of mechanical surface treatment for mould and die production
- Short Communications
- Discussion of defect analysis of a Ti-6Al-4V alloy forging ring
- DGM News
- DGM News