JOURNAL ARTICLE

Hydroxyapatite moldable formulation using natural rubber latex as binder

G. S. SailajaP. RameshH. K. Varma

Year: 2006 Journal:   Journal of Biomedical Materials Research Part B Applied Biomaterials Vol: 82B (1)Pages: 231-238   Publisher: Wiley

Abstract

Abstract A simple but efficient processing method for shaping intricate bioceramic green bodies has been developed by using natural rubber latex as binder. Different shapes of hydroxyapatite Ca 10 (PO 4 ) 6 (OH) 2 (HAP) were molded from a composite formulation containing wet precipitated HAP, natural rubber latex (NRL), and a stabilizer. On controlled heat treatment followed by sintering, dense shapes of HAP contours were obtained. The thermal degradation profile of HAP–NRL composites shows that NRL degrades slowly without any abrupt exotherm. The results of energy dispersive X‐ray analysis together with inductively coupled plasma (ICP) analysis indicate that the inorganic residue of NRL does not contain any heavy element. The sintered density of the samples increased with increased HAP content in the formulation and percentage shrinkage reduced accordingly. On varying the HAP content in the formulation from 35 to 95 wt %, the compositions with 85, 90, 92, and 95 wt % HAP showed better flexural strength in the range 40–54 MPa and a flexural modulus value in the range 36–50 GPa. The fracture morphology, as observed by the scanning electron microscope confirms that with increased HAP content in the formulation the sample microstructure attains higher uniformity. The Vickers microhardness for the samples sintered at two different temperatures (1150 and 1250°C) showed that hardness increases with increase in the sintering temperature with a maximum for the highest HAP loaded formulation. © 2006 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 2006.

Keywords:
Materials science Composite material Flexural strength Scanning electron microscope Natural rubber Sintering Microstructure Composite number Indentation hardness Flexural modulus

Metrics

8
Cited By
0.58
FWCI (Field Weighted Citation Impact)
19
Refs
0.70
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Bone Tissue Engineering Materials
Physical Sciences →  Engineering →  Biomedical Engineering
biodegradable polymer synthesis and properties
Physical Sciences →  Materials Science →  Biomaterials
Dental materials and restorations
Health Sciences →  Dentistry →  Orthodontics
© 2026 ScienceGate Book Chapters — All rights reserved.