PG-EAM - Programa de Pós-Graduação em Engenharia Aeronáutica e Mecânica
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Artigo 2022

Morphological, structural, and in vitro bioactivity of core-shell-structured bioactive glass by multitechnical spectroscopic approach

Autores

Magalhães, Alviclér
Bertran, Celso Aparecido

Ceramics International , vol. 48 , no. 6 , pp. 8039-8050

ISSN: 02728842

6
Citações
3
Autores

Resumo

© 2021The pioneeristic work of Hench led to the development of a calcium sodium phosphosilicate composition called 45S5 Bioglass®, which has been investigated extensively for applications in the field of bone repair and regeneration because of its bioactivity, i.e., ability to form a bond to living bone. The bioactivity of silicate glass is qualitatively associated with the development over time of the apatite layer on a bioactive glass, while quantitatively it would be related to how fast the formation of this crystalline phase occurs. In this work, (Camoltensaltbath2+|Naglass+) ion exchange in a molten salt bath (MSB) was employed for modifying the glass surface aiming to create a more reactive glass in a thin shell that surrounds the vitreous core, which preserves all the bioactivity characteristics of 45S5 Bioglass® composition. The 45S5@Ca45S5 core-shell-structured bioactive glass is characterized by a vitreous matrix enriched with calcium and a highly depolymerized silicate network. The presence of calcium-rich glass composition restricted to a thin shell acts as a catalyst, accelerating all the earlier events that occur at the glass/solution interface. The kinetics of deposition of the silica-gel and apatite layers was investigated by FTIR and 31P MAS NMR, respectively. The results suggest that the modification of the glass surface causes not only a reduction in the formation time of silica-gel and amorphous calcium phosphate on the glass surface but also induced the formation of the apatite phase with a higher degree of crystallinity.

Palavras-chave

45S5 Bioglass® Apatite Bioactivity Calcium Ion exchange

Electronic, Optical and Magnetic Materials (MATE) Ceramics and Composites (MATE) Process Chemistry and Technology (CENG) Surfaces, Coatings and Films (MATE) Materials Chemistry (MATE)
: Scopus
Última atualização: 2026-06-25
: 2-s2.0-85120849921
PII: S0272884221037755