Title of article :
Microstructure and corrosion behavior of coated AZ91 alloy by microarc oxidation for biomedical application
Author/Authors :
Y.M. Wang، نويسنده , , F.H. Wang، نويسنده , , M.J. Xu، نويسنده , , B. Zhao، نويسنده , , L.X. Guo، نويسنده , , J.H. Ouyang، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2009
Pages :
8
From page :
9124
To page :
9131
Abstract :
Magnesium and its alloy currently are considered as the potential biodegradable implant materials, while the accelerated corrosion rate in intro environment leads to implant failure by losing the mechanical integrity before complete restoration. Dense oxide coatings formed in alkaline silicate electrolyte with and without titania sol addition were fabricated on magnesium alloy using microarc oxidation process. The microstructure, composition and degradation behavior in simulated body fluid (SBF) of the coated specimens were evaluated. It reveals that a small amount of TiO2 is introduced into the as-deposited coating mainly composed of MgO and Mg2SiO4 by the addition of titania sol into based alkaline silicate electrolytic bath. With increasing concentration of titania sol from 0 to 10 vol.%, the coating thickness decreases from 22 to 18 μm. Electrochemical tests show that the Ecorr of Mg substrate positively shifted about 300∼500 mV and icorr lowers more than 100 times after microarc oxidation. However, the TiO2 modified coatings formed in electrolyte containing 5 and 10 vol.% titania sol indicate an increasing worse corrosion resistance compared with that of the unmodified coating, which is possibly attributed to the increasing amorphous components caused by TiO2 involvement. The long term immersing test in SBF is consistent with the electrochemical test, with the coated Mg alloy obviously slowing down the biodegradation rate, meanwhile accompanied by the increasing damage trends in the coatings modified by 5 and 10 vol.% titania sol.
Keywords :
Coating , Microarc oxidation , Biodegradable property , magnesium alloy
Journal title :
Applied Surface Science
Serial Year :
2009
Journal title :
Applied Surface Science
Record number :
1012220
Link To Document :
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