Title :
XRPD quantitative analysis of biomaterials based on calcium phosphate
Author :
Guo, Linghong ; Guo, Xia ; Qin, Ling ; Cheng, Jack ; Zhang, Xingdong
Author_Institution :
Eng. Res. Center for Biomater., Sichuan Union Univ., Chengdu, China
fDate :
29 Oct-1 Nov 1998
Abstract :
Synthetic calcium phosphate bioceramics are biocompatible materials capable of providing skeleton and scaffolding for new bone growth as well as osteogenesis. Since biological response to the different calcium phosphates changes greatly, quantitative phase analysis is essential to control the properties of the synthetic bioceramics and optimize the biological response. A method of X-ray powder diffraction (XRPD) quantitative analysis has been developed to determine the amounts of the principal crystalline phases (HAP, β-TCP, α-TCP, DCP) in biomaterials based on calcium phosphate. Rutile was selected as the reference, and the Reference Intensity Ratios (RIR) were accurately measured. A RIR database of XRPD quantitative analysis for biomaterials based on calcium phosphate was established. The principals and method of RIR quantitative analysis were introduced. The phase amounts of biomaterials based on calcium phosphate could be analyzed accurately, quickly and conveniently. The relative error is less than 5%. The absorption effect was totally eliminated and the cumbersome calibration curve procedure was shunted. Two samples of calcium phosphate ceramics were analyzed as examples of applicability of the RIR quantitative analysis of biomaterials based on calcium phosphate
Keywords :
X-ray chemical analysis; biomedical materials; calibration; ceramics; orthopaedics; Ca3(PO4)2; X-ray powder diffraction quantitative analysis method; XRPD quantitative analysis; biocompatible materials; biological response; biomaterials; calcium phosphate; cumbersome calibration curve procedure; new bone growth; osteogenesis; principal crystalline phases; quantitative phase analysis; reference intensity ratios; rutile; scaffolding; skeleton; synthetic bioceramics; synthetic calcium phosphate bioceramics; Bioceramics; Biological control systems; Biological materials; Bones; Calcium; Crystallization; Phase change materials; Powders; Skeleton; X-ray diffraction;
Conference_Titel :
Engineering in Medicine and Biology Society, 1998. Proceedings of the 20th Annual International Conference of the IEEE
Conference_Location :
Hong Kong
Print_ISBN :
0-7803-5164-9
DOI :
10.1109/IEMBS.1998.746091