Title of article :
Functionally graded hydroxyapatite-alumina-zirconia biocomposite: Synergy of toughness and biocompatibility
Author/Authors :
Afzal، نويسنده , , Mohammad Atif Faiz and Kesarwani، نويسنده , , Pallavi and Reddy، نويسنده , , K. Madhav and Kalmodia، نويسنده , , Sushma and Basu، نويسنده , , Bikramjit and Balani، نويسنده , , Kantesh، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2012
Pages :
10
From page :
1164
To page :
1173
Abstract :
Functionally Gradient Materials (FGM) are considered as a novel concept to implement graded functionality that otherwise cannot be achieved by conventional homogeneous materials. For biomedical applications, an ideal combination of bioactivity on the material surface as well as good physical property (strength/toughness/hardness) of the bulk is required in a designed FGM structure. In this perspective, the present work aims at providing a smooth gradation of functionality (enhanced toughening of the bulk, and retained biocompatibility of the surface) in a spark plasma processed hydroxyapatite-alumina-zirconia (HAp-Al2O3-YSZ) FGM bio-composite. In the current work HAp (fracture toughness ~ 1.5 MPa.m1/2) and YSZ (fracture toughness ~ 6.2 MPa.m1/2) are coupled with a transition layer of Al2O3 allowing minimum gradient of mechanical properties (especially the fracture toughness ~ 3.5 MPa.m1/2). The in vitro cyto-compatibilty of HAp-Al2O3-YSZ FGM was evaluated using L929 fibroblast cells and Saos-2 Osteoblast cells for their adhesion and growth. From analysis of the cell viability data, it is evident that FGM supports good cell proliferation after 2, 3, 4 days culture. The measured variation in hardness, fracture toughness and cellular adhesion across the cross section confirmed the smooth transition achieved for the FGM (HAp-Al2O3-YSZ) nanocomposite, i.e. enhanced bulk toughness combined with unrestricted surface bioactivity. Therefore, such designed biomaterials can serve as potential bone implants.
Keywords :
Functionally graded HAp-Al2O3-YSZ , Cell culture , spark plasma sintering , MTT assay , fracture toughness
Journal title :
Materials Science and Engineering C
Serial Year :
2012
Journal title :
Materials Science and Engineering C
Record number :
2101945
Link To Document :
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