Sintering of Hydroxyapatite-Bioglass Ceramics Composite from Submicrometer Powder

Article Preview

Abstract:

The mechanical properties of hydroxyapatite ceramics was improved by adding 5 wt% of Ca-P-Na-based-glass to be as sintering aid and were made their powder to submicron sized. The powders are uniaxially compact and then sintering at 1300°C in air.Microstructure and mechanical properties of the ceramic composite products were investigated. It was found that the strength of hydroxyapatite composite was increased about 42% that of the sample which fabricated by micron sized HA composite powder having the same porosity and this values are in rang of values of the strength of the cortical human bone. Moreover, Young modulus values of 16.4 1.8 GPa matched well with the Young modulus values of human bone, so it will not cause interfacial stress between implant and bone leading to good fixation of the materials.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 622-623)

Pages:

762-766

Citation:

Online since:

December 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2013 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Hing, K,A. Phil. Trans. R. Soc. Lond. A 362 (2004); 2821–2850.

Google Scholar

[2] Suchanek, W, and Yoshimura, M. J. Mater. Res(1998); Vol. 13(1).

Google Scholar

[3] Oktar, F, N, and Goller, G. Ceram Int (2002); 28 617-621.

Google Scholar

[4] Kalita, S.J., Bose, S., Hosick, H.L. and Bandyopadhyay, A. Biomaterials (2004); 25; 2331-9.

Google Scholar

[5] Knowles JC, and Bonfield W. J Biomed Mater Res (1993); 27: 1591–8.

Google Scholar

[6] Sleboda, T., Muszka, K., Majta, J., Hale, P, and Wright, R, N. J. mater process tech (2006).

Google Scholar

[7] Meyers, M,A., Mishra, A, and Benson, D,J. Progress in Mater Sci 51 (2006); 427-556.

Google Scholar

[8] Juhasza, J.A., Besta, S.M., Brooksb, R., Kawashitac, M., Miyatac, N.

Google Scholar

[9] Kokuboc, T., Nakamurad, T, and Bonfielda, W. Biomaterials 25 (2004); 949–955.

Google Scholar

[10] Georgiou, G and Knowles, JC. Biomaterials 22 (2001); (20). 2811–5.

Google Scholar

[11] Bhaduri, S., Bhaduri, S. B, and Zhou, E. J. Mater. Res (1998); 13 156-65.

Google Scholar

[12] Murugan, R, and Ramakrishna, S. (2005). Comp Sci Technol (2005); 65: 2385-2406.

Google Scholar

[13] Larry L. Hench. Bioceramics. J. Am. Ceram. Soc(1998); 81.

Google Scholar

[7] 1705–28.

Google Scholar

[14] Suchanek, W, and Yoshimura, J. Am. Ceram. Soc (1998); 81.

Google Scholar

[3] 765–67.

Google Scholar