Ab initio elastic properties and tensile strength of crystalline hydroxyapatite
β Scribed by W.Y. Ching; Paul Rulis; A. Misra
- Publisher
- Elsevier Science
- Year
- 2009
- Tongue
- English
- Weight
- 518 KB
- Volume
- 5
- Category
- Article
- ISSN
- 1742-7061
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β¦ Synopsis
We report elastic constant calculation and a "theoretical" tensile experiment on stoichiometric hydroxyapatite (HAP) crystal using an ab initio technique. These results compare favorably with a variety of measured data. Theoretical tensile experiments are performed on the orthorhombic cell of HAP for both uniaxial and biaxial loading. The results show considerable anisotropy in the stress-strain behavior. It is shown that the failure behavior of the perfect HAP crystal is brittle for tension along the z-axis with a maximum stress of 9.6 GPa at 10% strain. Biaxial failure envelopes from six "theoretical" loading tests show a highly anisotropic pattern. Structural analysis of the crystal under various stages of tensile strain reveals that the deformation behavior manifests itself mainly in the rotation of the PO(4) tetrahedron with concomitant movements of both the columnar and axial Ca ions. These results are discussed in the context of mechanical properties of bioceramic composites relevant to mineralized tissues.
π SIMILAR VOLUMES
Ab initio study of structural, elastic, electronic and optical properties of the cubic spinel oxide SnMg 2 O 4 has been reported using the pseudo-potential plane-wave method within the local density approximation and the gradient generalized approximation for the exchange and correlation potential.
Density functional method was applied to study 1,5-diamino-1,2,3,4-tetrazole (DAT, CH 4 N 6 ) in both gaseous and bulk states. The banding and electronic structures of crystalline have been investigated at DFT-B3LYP/ 6-311G\*\* level of theory. Relaxed crystal structure compares well with experiment