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Molecular Dynamics Simulation of the Thermal Behavior of Hydroxyapatite

Hydroxyapatite (HAP) is the main mineral component of bones and teeth. Due to its biocompatibility, HAP is widely used in medicine as a filler that replaces parts of lost bone and as an implant coating that promotes new bone growth. The modeling and calculations of the structure and properties of HA...

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Autores principales: Likhachev, Ilya, Balabaev, Nikolay, Bystrov, Vladimir, Paramonova, Ekaterina, Avakyan, Leon, Bulina, Natalia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9740815/
https://www.ncbi.nlm.nih.gov/pubmed/36500868
http://dx.doi.org/10.3390/nano12234244
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author Likhachev, Ilya
Balabaev, Nikolay
Bystrov, Vladimir
Paramonova, Ekaterina
Avakyan, Leon
Bulina, Natalia
author_facet Likhachev, Ilya
Balabaev, Nikolay
Bystrov, Vladimir
Paramonova, Ekaterina
Avakyan, Leon
Bulina, Natalia
author_sort Likhachev, Ilya
collection PubMed
description Hydroxyapatite (HAP) is the main mineral component of bones and teeth. Due to its biocompatibility, HAP is widely used in medicine as a filler that replaces parts of lost bone and as an implant coating that promotes new bone growth. The modeling and calculations of the structure and properties of HAP showed that various structural defects have a significant effect on the properties of the material. By varying these structural heterogeneities, it is possible to increase the biocompatibility of HAP. An important role here is played by OH group vacancies, which are easily formed when these hydroxyl groups leave OH channels of HAP. In this case, the temperature dependence of the concentration of OH ions, which also determines the thermal behavior of HAP, is important. To study the evaporation of OH ions from HAP structures with increasing temperatures, molecular dynamics simulation (MDS) methods were used in this work. As a program for MDS modeling, we used the PUMA-CUDA software package. The initial structure of HAP, consisting of 4 × 4 × 2 = 32 unit cells of the hexagonal HAP phase, surrounded by a 15-Å layer of water was used in the modelling. Multiple and statistically processed MDS, running calculations in the range of 700–1400 K, showed that active evaporation of OH ions begins at the temperature of 1150 K. The analysis of the obtained results in comparison with those available in the literature data shows that these values are very close to the experiments. Thus, this MDS approach demonstrates its effective applicability and shows good results in the study of the thermal behavior of HAP.
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spelling pubmed-97408152022-12-11 Molecular Dynamics Simulation of the Thermal Behavior of Hydroxyapatite Likhachev, Ilya Balabaev, Nikolay Bystrov, Vladimir Paramonova, Ekaterina Avakyan, Leon Bulina, Natalia Nanomaterials (Basel) Article Hydroxyapatite (HAP) is the main mineral component of bones and teeth. Due to its biocompatibility, HAP is widely used in medicine as a filler that replaces parts of lost bone and as an implant coating that promotes new bone growth. The modeling and calculations of the structure and properties of HAP showed that various structural defects have a significant effect on the properties of the material. By varying these structural heterogeneities, it is possible to increase the biocompatibility of HAP. An important role here is played by OH group vacancies, which are easily formed when these hydroxyl groups leave OH channels of HAP. In this case, the temperature dependence of the concentration of OH ions, which also determines the thermal behavior of HAP, is important. To study the evaporation of OH ions from HAP structures with increasing temperatures, molecular dynamics simulation (MDS) methods were used in this work. As a program for MDS modeling, we used the PUMA-CUDA software package. The initial structure of HAP, consisting of 4 × 4 × 2 = 32 unit cells of the hexagonal HAP phase, surrounded by a 15-Å layer of water was used in the modelling. Multiple and statistically processed MDS, running calculations in the range of 700–1400 K, showed that active evaporation of OH ions begins at the temperature of 1150 K. The analysis of the obtained results in comparison with those available in the literature data shows that these values are very close to the experiments. Thus, this MDS approach demonstrates its effective applicability and shows good results in the study of the thermal behavior of HAP. MDPI 2022-11-29 /pmc/articles/PMC9740815/ /pubmed/36500868 http://dx.doi.org/10.3390/nano12234244 Text en © 2022 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
Likhachev, Ilya
Balabaev, Nikolay
Bystrov, Vladimir
Paramonova, Ekaterina
Avakyan, Leon
Bulina, Natalia
Molecular Dynamics Simulation of the Thermal Behavior of Hydroxyapatite
title Molecular Dynamics Simulation of the Thermal Behavior of Hydroxyapatite
title_full Molecular Dynamics Simulation of the Thermal Behavior of Hydroxyapatite
title_fullStr Molecular Dynamics Simulation of the Thermal Behavior of Hydroxyapatite
title_full_unstemmed Molecular Dynamics Simulation of the Thermal Behavior of Hydroxyapatite
title_short Molecular Dynamics Simulation of the Thermal Behavior of Hydroxyapatite
title_sort molecular dynamics simulation of the thermal behavior of hydroxyapatite
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9740815/
https://www.ncbi.nlm.nih.gov/pubmed/36500868
http://dx.doi.org/10.3390/nano12234244
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