Calcium phosphate nanoparticles prepared via solid-state route

To date, the direction of bioceramic research is focused on the improvement of the mechanical performance and biological properties of existing bioactive ceramics particularly HA. Hence, the synthesis of crystalline HA nanoparticles with expected microstructure is of primary importance because the p...

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Published in:International Journal of Engineering and Technology(UAE)
Main Author: Natasha A.N.; Ramesh S.; Tan C.Y.
Format: Article
Language:English
Published: Science Publishing Corporation Inc 2018
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85055534803&partnerID=40&md5=7f15fceefbc3df995753621295c09dac
id 2-s2.0-85055534803
spelling 2-s2.0-85055534803
Natasha A.N.; Ramesh S.; Tan C.Y.
Calcium phosphate nanoparticles prepared via solid-state route
2018
International Journal of Engineering and Technology(UAE)
7
4

https://www.scopus.com/inward/record.uri?eid=2-s2.0-85055534803&partnerID=40&md5=7f15fceefbc3df995753621295c09dac
To date, the direction of bioceramic research is focused on the improvement of the mechanical performance and biological properties of existing bioactive ceramics particularly HA. Hence, the synthesis of crystalline HA nanoparticles with expected microstructure is of primary importance because the process directly relates to the phase purity, morphology, and particle size of the final HA particles. In this work, a simple and cost-effective technique, solid state reaction method was successfully employed to synthesize highly crystalline, high purity and single phase nanostructured hydroxyapatite powder using waste eggshells (HA-Es). The process involved mixing calcined eggshell powder and dicalcium hydrogen phosphate di-hydrate followed by a heat treatment at 800 °C for 5 hours. The resultant flower-like nanostructure HA powder is composed of leaf-like flakes having 100-200 nm width and crystallite size calculated using XRD data of ~56.21 nm. © 2018 Authors.
Science Publishing Corporation Inc
2227524X
English
Article

author Natasha A.N.; Ramesh S.; Tan C.Y.
spellingShingle Natasha A.N.; Ramesh S.; Tan C.Y.
Calcium phosphate nanoparticles prepared via solid-state route
author_facet Natasha A.N.; Ramesh S.; Tan C.Y.
author_sort Natasha A.N.; Ramesh S.; Tan C.Y.
title Calcium phosphate nanoparticles prepared via solid-state route
title_short Calcium phosphate nanoparticles prepared via solid-state route
title_full Calcium phosphate nanoparticles prepared via solid-state route
title_fullStr Calcium phosphate nanoparticles prepared via solid-state route
title_full_unstemmed Calcium phosphate nanoparticles prepared via solid-state route
title_sort Calcium phosphate nanoparticles prepared via solid-state route
publishDate 2018
container_title International Journal of Engineering and Technology(UAE)
container_volume 7
container_issue 4
doi_str_mv
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85055534803&partnerID=40&md5=7f15fceefbc3df995753621295c09dac
description To date, the direction of bioceramic research is focused on the improvement of the mechanical performance and biological properties of existing bioactive ceramics particularly HA. Hence, the synthesis of crystalline HA nanoparticles with expected microstructure is of primary importance because the process directly relates to the phase purity, morphology, and particle size of the final HA particles. In this work, a simple and cost-effective technique, solid state reaction method was successfully employed to synthesize highly crystalline, high purity and single phase nanostructured hydroxyapatite powder using waste eggshells (HA-Es). The process involved mixing calcined eggshell powder and dicalcium hydrogen phosphate di-hydrate followed by a heat treatment at 800 °C for 5 hours. The resultant flower-like nanostructure HA powder is composed of leaf-like flakes having 100-200 nm width and crystallite size calculated using XRD data of ~56.21 nm. © 2018 Authors.
publisher Science Publishing Corporation Inc
issn 2227524X
language English
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