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Selective Laser Melting of Hydroxyapatite: Perspectives for 3D Printing of Bioresorbable Ceramic Implants

Hydroxyapatite, being the major mineral component of tooth enamel and natural bones, is a good candidate for bone tissue engineering applications. One of the promising approaches for manufacturing of three-dimensional objects is selective laser sintering/melting which enables the creation of a dense...

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Autores principales: Bulina, Natalia V., Baev, Sergey G., Makarova, Svetlana V., Vorobyev, Alexander M., Titkov, Alexander I., Bessmeltsev, Victor P., Lyakhov, Nikolay Z.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8468468/
https://www.ncbi.nlm.nih.gov/pubmed/34576648
http://dx.doi.org/10.3390/ma14185425
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author Bulina, Natalia V.
Baev, Sergey G.
Makarova, Svetlana V.
Vorobyev, Alexander M.
Titkov, Alexander I.
Bessmeltsev, Victor P.
Lyakhov, Nikolay Z.
author_facet Bulina, Natalia V.
Baev, Sergey G.
Makarova, Svetlana V.
Vorobyev, Alexander M.
Titkov, Alexander I.
Bessmeltsev, Victor P.
Lyakhov, Nikolay Z.
author_sort Bulina, Natalia V.
collection PubMed
description Hydroxyapatite, being the major mineral component of tooth enamel and natural bones, is a good candidate for bone tissue engineering applications. One of the promising approaches for manufacturing of three-dimensional objects is selective laser sintering/melting which enables the creation of a dense structure directly during 3D printing by adding material layer-by-layer. The effect of laser irradiation with a wavelength of 10.6 μm on the behavior of mechanochemically synthesized hydroxyapatite under different treatment conditions was studied for the first time in this work. It was shown that, in contrast to laser treatment, the congruent melting is impossible under conditions of a relatively slow rate of heating in a furnace. Depending on the mode of laser treatment, hydroxyapatite can be sintered or melted, or partially decomposed into the more resorbable calcium phosphates. It was found that the congruent selective laser melting of hydroxyapatite can be achieved by treating the dense powder layer with a 0.2 mm laser spot at a power of 4 W and at a scanning speed of 700 mm/s. Melting was shown to be accompanied by the crystallization of a dense monolayer of oxyhydroxyapatite while preserving the initial apatite crystal lattice. The thickness of the melted layer, the presence of micron-sized pores, and the phase composition can be controlled by varying the scanning speed and laser power. This set of parameters permits the use of selective laser melting technology for the production of oxyhydroxyapatite biodegradable implants with acceptable properties by 3D printing.
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spelling pubmed-84684682021-09-27 Selective Laser Melting of Hydroxyapatite: Perspectives for 3D Printing of Bioresorbable Ceramic Implants Bulina, Natalia V. Baev, Sergey G. Makarova, Svetlana V. Vorobyev, Alexander M. Titkov, Alexander I. Bessmeltsev, Victor P. Lyakhov, Nikolay Z. Materials (Basel) Article Hydroxyapatite, being the major mineral component of tooth enamel and natural bones, is a good candidate for bone tissue engineering applications. One of the promising approaches for manufacturing of three-dimensional objects is selective laser sintering/melting which enables the creation of a dense structure directly during 3D printing by adding material layer-by-layer. The effect of laser irradiation with a wavelength of 10.6 μm on the behavior of mechanochemically synthesized hydroxyapatite under different treatment conditions was studied for the first time in this work. It was shown that, in contrast to laser treatment, the congruent melting is impossible under conditions of a relatively slow rate of heating in a furnace. Depending on the mode of laser treatment, hydroxyapatite can be sintered or melted, or partially decomposed into the more resorbable calcium phosphates. It was found that the congruent selective laser melting of hydroxyapatite can be achieved by treating the dense powder layer with a 0.2 mm laser spot at a power of 4 W and at a scanning speed of 700 mm/s. Melting was shown to be accompanied by the crystallization of a dense monolayer of oxyhydroxyapatite while preserving the initial apatite crystal lattice. The thickness of the melted layer, the presence of micron-sized pores, and the phase composition can be controlled by varying the scanning speed and laser power. This set of parameters permits the use of selective laser melting technology for the production of oxyhydroxyapatite biodegradable implants with acceptable properties by 3D printing. MDPI 2021-09-19 /pmc/articles/PMC8468468/ /pubmed/34576648 http://dx.doi.org/10.3390/ma14185425 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bulina, Natalia V.
Baev, Sergey G.
Makarova, Svetlana V.
Vorobyev, Alexander M.
Titkov, Alexander I.
Bessmeltsev, Victor P.
Lyakhov, Nikolay Z.
Selective Laser Melting of Hydroxyapatite: Perspectives for 3D Printing of Bioresorbable Ceramic Implants
title Selective Laser Melting of Hydroxyapatite: Perspectives for 3D Printing of Bioresorbable Ceramic Implants
title_full Selective Laser Melting of Hydroxyapatite: Perspectives for 3D Printing of Bioresorbable Ceramic Implants
title_fullStr Selective Laser Melting of Hydroxyapatite: Perspectives for 3D Printing of Bioresorbable Ceramic Implants
title_full_unstemmed Selective Laser Melting of Hydroxyapatite: Perspectives for 3D Printing of Bioresorbable Ceramic Implants
title_short Selective Laser Melting of Hydroxyapatite: Perspectives for 3D Printing of Bioresorbable Ceramic Implants
title_sort selective laser melting of hydroxyapatite: perspectives for 3d printing of bioresorbable ceramic implants
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8468468/
https://www.ncbi.nlm.nih.gov/pubmed/34576648
http://dx.doi.org/10.3390/ma14185425
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