Properties of the Ceramic Composites and Glass-Ceramics Prepared by Using the Natural Hydroxyapatite Derived from Tuna bone

참치 뼈에서 추출한 천연 Hydroxyapatite를 이용한 세라믹 복합체 및 Glass-Ceramics의 특성

  • Choi, Jin-Sam (Department of Chemistry, Pukyong National University) ;
  • Lee, Chang-Kook (Department of Chemistry, Pukyong National University) ;
  • Jeon, You-Jin (Department of Chemistry, Pukyong National University) ;
  • Byun, Hee-Guk (Department of Chemistry, Pukyong National University) ;
  • Kim, Se-Kwon (Department of Chemistry, Pukyong National University)
  • Received : 1998.11.16
  • Accepted : 1999.02.03
  • Published : 1999.05.10

Abstract

As the prosthetic application of natural mineral substituted for chemical reagent, composites and a glass-ceramics containing hydro-xyapatite isolated from tuna bone were prepared by solid state reaction. On x-ray examinations, the major phases of composites were identified as pseudowollastonite(${\alpha}-CaSiO_3$) and ${\beta}$-tricalcium phosphate($\beta$-TCP) and the phase of a glass-ceramics was observed as $\beta$-TCP and fluoroapatite caused by $CaF_2$ respectively. SEM images depict that the microstructures of grain at the composites were a function of temperature. The measured strength of a glass-ceramics prepared at $900^{\circ}C$ for 4 hr in air was 90 MPa as a 4-point bending method and this value was similar to the cortical bone, as 50~150 MPa but it was lower than its maximum strength.

바이오 세라믹스와 같은 의료용재료의 출발물질에 사용되는 화학시약을 대신하여 참치 뼈로부터 추출한 천연 hydroxyapatite를 이용하여 세라믹 복합체와 glass-ceramics 등을 제조하였다. 복합체의 경우 pseudowollastonite(${\alpha}-CaSiO_3$)와 $\beta$-tricalcium phosphate($\beta$-TCP)가 주 결정상으로, 그리고 glass-ceramics는 pseudowollastonite, $\beta$-TCP 및 핵형성제로 포함시킨 $CaF_2$에 의한 fluoroapatite상이 각각 관찰되었다. 복합체의 미세구조 변화 양상은 열처리 온도의 함수로 결정상의 입자 크기가 증가하는 일반적인 미세조직 구조의 형태를 나타내었고, 맛) $900^{\circ}C$로 4시간 동안 대기 상에서 제조한 glass-ceramics의 강도는 90 MPa로 나타났다.

Keywords

Acknowledgement

Supported by : 농림수산부

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