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31 K. Kurashina, H. Kurita, Q. Wu, A. Ohtsuka, and H. Kobayashi, "Ectopic Osteogenesis with Biphasic Ceramics of Hydroxyapatite and Tricalcium Phosphate in Rabbits," Biomaterials, 23,407-412 (2002). 24 Bioceramics: Materials and Applications IV Bioceramics: Materials and Applications IV Edited by Veeraraghavan Sundar, Richard P. Rusin and Claire A. Rutiser Copyright © 2003, The American Ceramic Society MANUFACTURING OF THERMALLY SPRAYED TRICALCIUM PHOSPHATE (TCP) COATINGS FOR BIOMEDICAL APPLICATIONS M.

Crystal Growth, 53 63-73 (1981). 3 L. L. Hench, "Bioactive Glasses and Glass Ceramics," Materials Science Forum, 293 37-63 (1999). 4 L. L. Hench, "Bioceramics," J. Am. Ceram. Soc, 81 [7] 1705-28 (1998). 5 T. Kokubo, "Novel Biomedical Materials Based on Glasses," Materials Science Forum, 293 65-82 (1999). 6 H. Zhang and S. Li, "Preparation and Properties of Hydroxyapatite Coating on Glass Surface by Hydrothermal Method," Glass Technology, 42 [3] 97-100 (2001). 7 L. L. Hench, "Bioceramics: From Concept to Clinic," J.

In contrast to bioactive materials like hydroxyapatite (HAP), which are intended to remain stable and chemically unchanged as long as possible in the human body, resorbable bioceramics are applied to dissolve gradually in body environment and new bone will replace the absorbed material. Tricalcium phosphate (TCP) appears to be the most suitable bioceramic of this type. It is known in its two polymorphs, the high temperature oc-TCP and the more stable ß-TCP phase. A promising application of these bioceramics is the coating of bioinert metal alloys, bioresorbable polymeric substrates or composite structures made thereof.

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