Enhancement of Fracture Toughness in carbonate doped Hydroxyapatite based nanocomposites: Rietveld analysis and Mechanical behaviour

被引:5
作者
Bhatnagar, Dhruv [1 ]
Gautam, Sanjeev [1 ]
Batra, Hemant [2 ]
Goyal, Navdeep [3 ]
机构
[1] Dr SS Bhatnagar Univ, Panjab Univ, Adv Funct Mat Lab, Inst Chem Engn & Technol, Chandigarh 160014, India
[2] Panjab Univ, Dr Harvansh Singh Judge Inst, Dent Sci & Hosp, Chandigarh 160014, India
[3] Panjab Univ, Dept Phys, Chandigarh 160014, India
关键词
Biomaterials; Rietveld analysis; HydroxyApatite; Bone Research; Microstructure analysis; Mechanical properties; Tissue engineering material; BONE; SCAFFOLDS; FABRICATION; IMPLANTS;
D O I
10.1016/j.jmbbm.2023.105814
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Highly nanocrystalline carbonated hydroxyapatite (CHAp) is synthesized by hydrothermal technique with four different stoichiometric compositions for microstructural and mechanical analysis. HAp is one of the most biocompatible material and addition of carbonate ions lead to increase in fracture toughness highly required in biomedical applications. The structural properties and its purity as single phase is confirmed by X-ray diffraction. Lattice imperfections and structural defects is investigated using XRD pattern model simulation, i.e. Rietveld's analysis. The substitution of CO32- in HAp structure leads to a decrease in crystallinity which ultimately lessens crystallite size of sample as verified by XRD analysis. FE-SEM micrographs confirms the formation of nanorods with cuboidal morphology and porous structure of HAp and CHAp samples. The particle size distribution histogram validates the constant decrease in size due to carbonate addition. The mechanical testing of prepared samples revealed the increase in mechanical strength from 6.12 MPa to 11.52 MPa due to the addition of carbonate content, which leads to a rise in fracture toughness, a significant property of an implant material from 2.93 kN to 4.22 kN. The cumulative effect of CO32- substitution on HAp structure and mechanical properties has been generalized for the application as biomedical implant material or biomedical smart materials.
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页数:8
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