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Germanium-doped hydroxyapatite: Synthesis and characterization of a new substituted apatite

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2022
1-s2.0-S0272884222020624-main.pdf (6.575Mb)
Authors
Uskoković, Vuk
Ignjatović, Nenad
Škapin, Srečo
Uskoković, Dragan
Article (Published version)
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Abstract
Hydroxyapatite (HAp) is the major component of all boney tissues in mammals. Because of this omnipresence in the living world, HAp possesses an exceptional biocompatibility. The downside of this omnipresence, however, comes in the form of its mild to moderate biological activities. One means of augmenting these activities involves the doping of HAp with foreign ions. Here, the first synthesis and characterization of HAp doped with germanium ions is being reported. Germanium was deliberately integrated into the crystal lattice of HAp in the form of germanate anions. Approximately two thirds of the germanate ions introduced into the hydrothermal solution got incorporated into the HAp lattice, yielding the approximate stoichiometry of Ca10-x(PO4)5.62+y(GeO3)0.38(OH)2-z. Germanates replaced the phosphates of stoichiometric HAp and induced the expansion of the HAp lattice both along the screw axis of the calcium ion hexagons and in the direction parallel to the basal plane. Simultaneously, ...the larger size and the triple valency of the germanate ion as compared to the smaller and trivalent phosphates prompted the bond distortion and charge compensation through defect formation, which reduced the crystallinity and increased the microstrain of the HAp lattice. Vibrational spectroscopic analyses corroborated these crystallographic effects by demonstrating the enhanced heterogeneity of the environments surrounding the active modes after germanate ions were incorporated into HAp. Conforming to La Châtelier's principle, this reduction of the crystallographic order increased the capacity of the material for integration of adventitious carbonates. However, the inclusion of germanate ions induced a partial shift of these carbonates to the hydroxyl channel sites, thus decreasing the ratio of the B-type carbonation to the A-type carbonation. Introduced into HAp, germanium acted as a superb regulator of the particle size and morphology, enhancing their fineness and uniformity. Inclusion of germanate ions also increased the electrophoretic mobility and hydrodynamic surface charge density of the particles by reducing their size and by inducing a more stochastic distribution of terminal ionic groups due to the bending of the crystal facets. Overall, the doping of HAp with germanate ions facilitated the production of narrowly dispersed nanorods with a moderately enhanced structural disorder and with a pronounced potential for the biomedical niche. © 2022 The Author(s)

Keywords:
crystal growth / crystallinity / crystallite size / doping / biocompatibility / calcium ions / characterization / hydroxyapatite / ions / mammals / morphology / nanoparticles / nanorods / phosphate minerals / precipitation (chemical) / synthesis (chemical) / synthesis and characterizations / surface plasmon resonance / spectroscopic analysis / doping (additives) / particle size / hydrothermal solution / doped hydroxyapatites / germaniums (Ge) / germanates / screw axis
Source:
Ceramics International, 2022, 48, 19, 27693-27702

DOI: 10.1016/j.ceramint.2022.06.068

ISSN: 0272-8842

Scopus: 2-s2.0-85132898350
[ Google Scholar ]
3
Handle
https://hdl.handle.net/21.15107/rcub_dais_13563
URI
https://dais.sanu.ac.rs/123456789/13563
Collections
  • ИТН САНУ - Општа колекција / ITS SASA - General collection
Institution/Community
Институт техничких наука САНУ / Institute of Technical Sciences of SASA
TY  - JOUR
AU  - Uskoković, Vuk
AU  - Ignjatović, Nenad
AU  - Škapin, Srečo
AU  - Uskoković, Dragan
PY  - 2022
UR  - https://dais.sanu.ac.rs/123456789/13563
AB  - Hydroxyapatite (HAp) is the major component of all boney tissues in mammals. Because of this omnipresence in the living world, HAp possesses an exceptional biocompatibility. The downside of this omnipresence, however, comes in the form of its mild to moderate biological activities. One means of augmenting these activities involves the doping of HAp with foreign ions. Here, the first synthesis and characterization of HAp doped with germanium ions is being reported. Germanium was deliberately integrated into the crystal lattice of HAp in the form of germanate anions. Approximately two thirds of the germanate ions introduced into the hydrothermal solution got incorporated into the HAp lattice, yielding the approximate stoichiometry of Ca10-x(PO4)5.62+y(GeO3)0.38(OH)2-z. Germanates replaced the phosphates of stoichiometric HAp and induced the expansion of the HAp lattice both along the screw axis of the calcium ion hexagons and in the direction parallel to the basal plane. Simultaneously, the larger size and the triple valency of the germanate ion as compared to the smaller and trivalent phosphates prompted the bond distortion and charge compensation through defect formation, which reduced the crystallinity and increased the microstrain of the HAp lattice. Vibrational spectroscopic analyses corroborated these crystallographic effects by demonstrating the enhanced heterogeneity of the environments surrounding the active modes after germanate ions were incorporated into HAp. Conforming to La Châtelier's principle, this reduction of the crystallographic order increased the capacity of the material for integration of adventitious carbonates. However, the inclusion of germanate ions induced a partial shift of these carbonates to the hydroxyl channel sites, thus decreasing the ratio of the B-type carbonation to the A-type carbonation. Introduced into HAp, germanium acted as a superb regulator of the particle size and morphology, enhancing their fineness and uniformity. Inclusion of germanate ions also increased the electrophoretic mobility and hydrodynamic surface charge density of the particles by reducing their size and by inducing a more stochastic distribution of terminal ionic groups due to the bending of the crystal facets. Overall, the doping of HAp with germanate ions facilitated the production of narrowly dispersed nanorods with a moderately enhanced structural disorder and with a pronounced potential for the biomedical niche. © 2022 The Author(s)
T2  - Ceramics International
T1  - Germanium-doped hydroxyapatite: Synthesis and characterization of a new substituted apatite
SP  - 27693
EP  - 27702
VL  - 48
IS  - 19
DO  - 10.1016/j.ceramint.2022.06.068
UR  - https://hdl.handle.net/21.15107/rcub_dais_13563
ER  - 
@article{
author = "Uskoković, Vuk and Ignjatović, Nenad and Škapin, Srečo and Uskoković, Dragan",
year = "2022",
abstract = "Hydroxyapatite (HAp) is the major component of all boney tissues in mammals. Because of this omnipresence in the living world, HAp possesses an exceptional biocompatibility. The downside of this omnipresence, however, comes in the form of its mild to moderate biological activities. One means of augmenting these activities involves the doping of HAp with foreign ions. Here, the first synthesis and characterization of HAp doped with germanium ions is being reported. Germanium was deliberately integrated into the crystal lattice of HAp in the form of germanate anions. Approximately two thirds of the germanate ions introduced into the hydrothermal solution got incorporated into the HAp lattice, yielding the approximate stoichiometry of Ca10-x(PO4)5.62+y(GeO3)0.38(OH)2-z. Germanates replaced the phosphates of stoichiometric HAp and induced the expansion of the HAp lattice both along the screw axis of the calcium ion hexagons and in the direction parallel to the basal plane. Simultaneously, the larger size and the triple valency of the germanate ion as compared to the smaller and trivalent phosphates prompted the bond distortion and charge compensation through defect formation, which reduced the crystallinity and increased the microstrain of the HAp lattice. Vibrational spectroscopic analyses corroborated these crystallographic effects by demonstrating the enhanced heterogeneity of the environments surrounding the active modes after germanate ions were incorporated into HAp. Conforming to La Châtelier's principle, this reduction of the crystallographic order increased the capacity of the material for integration of adventitious carbonates. However, the inclusion of germanate ions induced a partial shift of these carbonates to the hydroxyl channel sites, thus decreasing the ratio of the B-type carbonation to the A-type carbonation. Introduced into HAp, germanium acted as a superb regulator of the particle size and morphology, enhancing their fineness and uniformity. Inclusion of germanate ions also increased the electrophoretic mobility and hydrodynamic surface charge density of the particles by reducing their size and by inducing a more stochastic distribution of terminal ionic groups due to the bending of the crystal facets. Overall, the doping of HAp with germanate ions facilitated the production of narrowly dispersed nanorods with a moderately enhanced structural disorder and with a pronounced potential for the biomedical niche. © 2022 The Author(s)",
journal = "Ceramics International",
title = "Germanium-doped hydroxyapatite: Synthesis and characterization of a new substituted apatite",
pages = "27693-27702",
volume = "48",
number = "19",
doi = "10.1016/j.ceramint.2022.06.068",
url = "https://hdl.handle.net/21.15107/rcub_dais_13563"
}
Uskoković, V., Ignjatović, N., Škapin, S.,& Uskoković, D.. (2022). Germanium-doped hydroxyapatite: Synthesis and characterization of a new substituted apatite. in Ceramics International, 48(19), 27693-27702.
https://doi.org/10.1016/j.ceramint.2022.06.068
https://hdl.handle.net/21.15107/rcub_dais_13563
Uskoković V, Ignjatović N, Škapin S, Uskoković D. Germanium-doped hydroxyapatite: Synthesis and characterization of a new substituted apatite. in Ceramics International. 2022;48(19):27693-27702.
doi:10.1016/j.ceramint.2022.06.068
https://hdl.handle.net/21.15107/rcub_dais_13563 .
Uskoković, Vuk, Ignjatović, Nenad, Škapin, Srečo, Uskoković, Dragan, "Germanium-doped hydroxyapatite: Synthesis and characterization of a new substituted apatite" in Ceramics International, 48, no. 19 (2022):27693-27702,
https://doi.org/10.1016/j.ceramint.2022.06.068 .,
https://hdl.handle.net/21.15107/rcub_dais_13563 .

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