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Pourbaix-Guided Mineralization and Site-Selective Photoluminescence Properties of Rare Earth Substituted B-Type Carbonated Hydroxyapatite Nanocrystals

Rare-earth labeling in biological apatite could provide critical information for the pathologic transition (osteoclastic) and physiologic regeneration (osteogenesis) of bone and teeth because of their characteristic site-sensitive fluorescence in different coordinative conditions of various tissues...

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Detalles Bibliográficos
Autores principales: Liu, Peng, Li, Zhengqiang, Yuan, Long, Sun, Xiaolin, Zhou, Yanmin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7864488/
https://www.ncbi.nlm.nih.gov/pubmed/33494216
http://dx.doi.org/10.3390/molecules26030540
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author Liu, Peng
Li, Zhengqiang
Yuan, Long
Sun, Xiaolin
Zhou, Yanmin
author_facet Liu, Peng
Li, Zhengqiang
Yuan, Long
Sun, Xiaolin
Zhou, Yanmin
author_sort Liu, Peng
collection PubMed
description Rare-earth labeling in biological apatite could provide critical information for the pathologic transition (osteoclastic) and physiologic regeneration (osteogenesis) of bone and teeth because of their characteristic site-sensitive fluorescence in different coordinative conditions of various tissues in many biological processes. However, the rare-earth labeling method for biological apatites, i.e., carbonated-hydroxyapatite, has been rarely found in the literature. In this paper, we report a Pourbaix-diagram guided mineralizing strategy to controllable carbonation and doping of rare-earth ions in the hydroxyapatite (HA) lattice. The carbonation process of hydroxyapatite was achieved by controllable mineralization in hydrothermal condition with K(2)CO(3) as the carbonate source, which results into the pure B-type carbonated hydroxyapatite (CHA) with tunable carbonate substitution degree. All of the as-synthesized materials crystalized into P63/m (No. 176) space group with the lattice parameter of a decreases and c increases with the increasing of carbonate content in the reactants. Structural refinement results revealed that the substitution of planar CO(3)(2−) is superimposed on one of the faces of PO(4)(3−) tetrahedral sub-units with a rotation angle of 30° in reference to c-axis. All of the hydrothermally synthesized CHA nanocrystals show hexagonal rod-like morphology with the length of 70–110 nm and diameter of 21–35 nm, and the decreasing length/diameter ratio from 3.61 to 2.96 from low to high carbonated level of the samples. Five rare-earth cations, of Pr(3+), Sm(3+), Eu(3+), Tb(3+), and Ho(3+), were used as possible probe ions that can be doped into either HA or CHA lattice. The site-preference of Tb(3+) doping is the same in the crystallographic site of HA and CHA according to characteristic emission peaks of (5)D(4)–(7)F(j) (j = 3–6) transitions in their photoluminescent spectroscopy. Our work provides a controllable carbonation method for rare-earth labeling hydroxyapatite nanomaterials with potential biologically active implant powders for bone repair and tissue regeneration.
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spelling pubmed-78644882021-02-06 Pourbaix-Guided Mineralization and Site-Selective Photoluminescence Properties of Rare Earth Substituted B-Type Carbonated Hydroxyapatite Nanocrystals Liu, Peng Li, Zhengqiang Yuan, Long Sun, Xiaolin Zhou, Yanmin Molecules Article Rare-earth labeling in biological apatite could provide critical information for the pathologic transition (osteoclastic) and physiologic regeneration (osteogenesis) of bone and teeth because of their characteristic site-sensitive fluorescence in different coordinative conditions of various tissues in many biological processes. However, the rare-earth labeling method for biological apatites, i.e., carbonated-hydroxyapatite, has been rarely found in the literature. In this paper, we report a Pourbaix-diagram guided mineralizing strategy to controllable carbonation and doping of rare-earth ions in the hydroxyapatite (HA) lattice. The carbonation process of hydroxyapatite was achieved by controllable mineralization in hydrothermal condition with K(2)CO(3) as the carbonate source, which results into the pure B-type carbonated hydroxyapatite (CHA) with tunable carbonate substitution degree. All of the as-synthesized materials crystalized into P63/m (No. 176) space group with the lattice parameter of a decreases and c increases with the increasing of carbonate content in the reactants. Structural refinement results revealed that the substitution of planar CO(3)(2−) is superimposed on one of the faces of PO(4)(3−) tetrahedral sub-units with a rotation angle of 30° in reference to c-axis. All of the hydrothermally synthesized CHA nanocrystals show hexagonal rod-like morphology with the length of 70–110 nm and diameter of 21–35 nm, and the decreasing length/diameter ratio from 3.61 to 2.96 from low to high carbonated level of the samples. Five rare-earth cations, of Pr(3+), Sm(3+), Eu(3+), Tb(3+), and Ho(3+), were used as possible probe ions that can be doped into either HA or CHA lattice. The site-preference of Tb(3+) doping is the same in the crystallographic site of HA and CHA according to characteristic emission peaks of (5)D(4)–(7)F(j) (j = 3–6) transitions in their photoluminescent spectroscopy. Our work provides a controllable carbonation method for rare-earth labeling hydroxyapatite nanomaterials with potential biologically active implant powders for bone repair and tissue regeneration. MDPI 2021-01-21 /pmc/articles/PMC7864488/ /pubmed/33494216 http://dx.doi.org/10.3390/molecules26030540 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Peng
Li, Zhengqiang
Yuan, Long
Sun, Xiaolin
Zhou, Yanmin
Pourbaix-Guided Mineralization and Site-Selective Photoluminescence Properties of Rare Earth Substituted B-Type Carbonated Hydroxyapatite Nanocrystals
title Pourbaix-Guided Mineralization and Site-Selective Photoluminescence Properties of Rare Earth Substituted B-Type Carbonated Hydroxyapatite Nanocrystals
title_full Pourbaix-Guided Mineralization and Site-Selective Photoluminescence Properties of Rare Earth Substituted B-Type Carbonated Hydroxyapatite Nanocrystals
title_fullStr Pourbaix-Guided Mineralization and Site-Selective Photoluminescence Properties of Rare Earth Substituted B-Type Carbonated Hydroxyapatite Nanocrystals
title_full_unstemmed Pourbaix-Guided Mineralization and Site-Selective Photoluminescence Properties of Rare Earth Substituted B-Type Carbonated Hydroxyapatite Nanocrystals
title_short Pourbaix-Guided Mineralization and Site-Selective Photoluminescence Properties of Rare Earth Substituted B-Type Carbonated Hydroxyapatite Nanocrystals
title_sort pourbaix-guided mineralization and site-selective photoluminescence properties of rare earth substituted b-type carbonated hydroxyapatite nanocrystals
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7864488/
https://www.ncbi.nlm.nih.gov/pubmed/33494216
http://dx.doi.org/10.3390/molecules26030540
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