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CaSiO(3)-HAp Structural Bioceramic by Sol-Gel and SPS-RS Techniques: Bacteria Test Assessment

The article presents an original way of getting porous and mechanically strong CaSiO(3)-HAp ceramics, which is highly desirable for bone-ceramic implants in bone restoration surgery. The method combines wet and solid-phase approaches of inorganic synthesis: sol-gel (template) technology to produce t...

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Autores principales: Papynov, Evgeniy, Shichalin, Oleg, Buravlev, Igor, Belov, Anton, Portnyagin, Arseniy, Mayorov, Vitaliy, Merkulov, Evgeniy, Kaidalova, Taisiya, Skurikhina, Yulia, Turkutyukov, Vyacheslav, Fedorets, Alexander, Apanasevich, Vladimir
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7353512/
https://www.ncbi.nlm.nih.gov/pubmed/32545491
http://dx.doi.org/10.3390/jfb11020041
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author Papynov, Evgeniy
Shichalin, Oleg
Buravlev, Igor
Belov, Anton
Portnyagin, Arseniy
Mayorov, Vitaliy
Merkulov, Evgeniy
Kaidalova, Taisiya
Skurikhina, Yulia
Turkutyukov, Vyacheslav
Fedorets, Alexander
Apanasevich, Vladimir
author_facet Papynov, Evgeniy
Shichalin, Oleg
Buravlev, Igor
Belov, Anton
Portnyagin, Arseniy
Mayorov, Vitaliy
Merkulov, Evgeniy
Kaidalova, Taisiya
Skurikhina, Yulia
Turkutyukov, Vyacheslav
Fedorets, Alexander
Apanasevich, Vladimir
author_sort Papynov, Evgeniy
collection PubMed
description The article presents an original way of getting porous and mechanically strong CaSiO(3)-HAp ceramics, which is highly desirable for bone-ceramic implants in bone restoration surgery. The method combines wet and solid-phase approaches of inorganic synthesis: sol-gel (template) technology to produce the amorphous xonotlite (Ca(6)Si(6)O(17)·2OH) as the raw material, followed by its spark plasma sintering–reactive synthesis (SPS-RS) into ceramics. Formation of both crystalline wollastonite (CaSiO(3)) and hydroxyapatite (Ca(10)(PO(4))(6)(OH)(2)) occurs “in situ” under SPS conditions, which is the main novelty of the method, due to combining the solid-phase transitions of the amorphous xonotlite with the chemical reaction within the powder mixture between CaO and CaHPO(4). Formation of pristine HAp and its composite derivative with wollastonite was studied by means of TGA and XRD with the temperatures of the “in situ” interactions also determined. A facile route to tailor a macroporous structure is suggested, with polymer (siloxane-acrylate latex) and carbon (fibers and powder) fillers being used as the pore-forming templates. Microbial tests were carried out to reveal the morphological features of the bacterial film Pseudomonas aeruginosa that formed on the surface of the ceramics, depending on the content of HAp (0, 20, and 50 wt%).
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spelling pubmed-73535122020-07-15 CaSiO(3)-HAp Structural Bioceramic by Sol-Gel and SPS-RS Techniques: Bacteria Test Assessment Papynov, Evgeniy Shichalin, Oleg Buravlev, Igor Belov, Anton Portnyagin, Arseniy Mayorov, Vitaliy Merkulov, Evgeniy Kaidalova, Taisiya Skurikhina, Yulia Turkutyukov, Vyacheslav Fedorets, Alexander Apanasevich, Vladimir J Funct Biomater Article The article presents an original way of getting porous and mechanically strong CaSiO(3)-HAp ceramics, which is highly desirable for bone-ceramic implants in bone restoration surgery. The method combines wet and solid-phase approaches of inorganic synthesis: sol-gel (template) technology to produce the amorphous xonotlite (Ca(6)Si(6)O(17)·2OH) as the raw material, followed by its spark plasma sintering–reactive synthesis (SPS-RS) into ceramics. Formation of both crystalline wollastonite (CaSiO(3)) and hydroxyapatite (Ca(10)(PO(4))(6)(OH)(2)) occurs “in situ” under SPS conditions, which is the main novelty of the method, due to combining the solid-phase transitions of the amorphous xonotlite with the chemical reaction within the powder mixture between CaO and CaHPO(4). Formation of pristine HAp and its composite derivative with wollastonite was studied by means of TGA and XRD with the temperatures of the “in situ” interactions also determined. A facile route to tailor a macroporous structure is suggested, with polymer (siloxane-acrylate latex) and carbon (fibers and powder) fillers being used as the pore-forming templates. Microbial tests were carried out to reveal the morphological features of the bacterial film Pseudomonas aeruginosa that formed on the surface of the ceramics, depending on the content of HAp (0, 20, and 50 wt%). MDPI 2020-06-12 /pmc/articles/PMC7353512/ /pubmed/32545491 http://dx.doi.org/10.3390/jfb11020041 Text en © 2020 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
Papynov, Evgeniy
Shichalin, Oleg
Buravlev, Igor
Belov, Anton
Portnyagin, Arseniy
Mayorov, Vitaliy
Merkulov, Evgeniy
Kaidalova, Taisiya
Skurikhina, Yulia
Turkutyukov, Vyacheslav
Fedorets, Alexander
Apanasevich, Vladimir
CaSiO(3)-HAp Structural Bioceramic by Sol-Gel and SPS-RS Techniques: Bacteria Test Assessment
title CaSiO(3)-HAp Structural Bioceramic by Sol-Gel and SPS-RS Techniques: Bacteria Test Assessment
title_full CaSiO(3)-HAp Structural Bioceramic by Sol-Gel and SPS-RS Techniques: Bacteria Test Assessment
title_fullStr CaSiO(3)-HAp Structural Bioceramic by Sol-Gel and SPS-RS Techniques: Bacteria Test Assessment
title_full_unstemmed CaSiO(3)-HAp Structural Bioceramic by Sol-Gel and SPS-RS Techniques: Bacteria Test Assessment
title_short CaSiO(3)-HAp Structural Bioceramic by Sol-Gel and SPS-RS Techniques: Bacteria Test Assessment
title_sort casio(3)-hap structural bioceramic by sol-gel and sps-rs techniques: bacteria test assessment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7353512/
https://www.ncbi.nlm.nih.gov/pubmed/32545491
http://dx.doi.org/10.3390/jfb11020041
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