Elastic Mechanical Properties of 45S5-Based Bioactive Glass–Ceramic Scaffolds

Porosity is recognized to play a key role in dictating the functional properties of bioactive scaffolds, especially the mechanical performance of the material. The mechanical suitability of brittle ceramic and glass scaffolds for bone tissue engineering applications is usually evaluated on the basis...

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Main Authors: Francesco Baino, Elisa Fiume
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/12/19/3244
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spelling doaj-11df5d0556a34a1bbc9c5fd4813281ab2020-11-25T02:42:44ZengMDPI AGMaterials1996-19442019-10-011219324410.3390/ma12193244ma12193244Elastic Mechanical Properties of 45S5-Based Bioactive Glass–Ceramic ScaffoldsFrancesco Baino0Elisa Fiume1Institute of Materials Physics and Engineering, Applied Science and Technology Department, Politecnico di Torino, Corso Duca degli Abruzzi 24, 10129 Torino, ItalyInstitute of Materials Physics and Engineering, Applied Science and Technology Department, Politecnico di Torino, Corso Duca degli Abruzzi 24, 10129 Torino, ItalyPorosity is recognized to play a key role in dictating the functional properties of bioactive scaffolds, especially the mechanical performance of the material. The mechanical suitability of brittle ceramic and glass scaffolds for bone tissue engineering applications is usually evaluated on the basis of the compressive strength alone, which is relatively easy to assess. This work aims to investigate the porosity dependence of the elastic properties of silicate scaffolds based on the 45S5 composition. Highly porous glass−ceramic foams were fabricated by the sponge replica method and their elastic modulus, shear modulus, and Poisson’s ratio were experimentally determined by the impulse excitation technique; furthermore, the failure strength was quantified by compressive tests. As the total fractional porosity increased from 0.52 to 0.86, the elastic and shear moduli decreased from 16.5 to 1.2 GPa and from 6.5 to 0.43 GPa, respectively; the compressive strength was also found to decrease from 3.4 to 0.58 MPa, whereas the Poisson’s ratio increased from 0.2692 to 0.3953. The porosity dependences of elastic modulus, shear modulus and compressive strength obeys power-law models, whereas the relationship between Poisson’s ratio and porosity can be described by a linear approximation. These relations can be useful to optimize the design and fabrication of porous biomaterials as well as to predict the mechanical properties of the scaffolds.https://www.mdpi.com/1996-1944/12/19/3244bioactive glassscaffoldbioceramicsmechanical propertieselastic modulusporositymodelling
collection DOAJ
language English
format Article
sources DOAJ
author Francesco Baino
Elisa Fiume
spellingShingle Francesco Baino
Elisa Fiume
Elastic Mechanical Properties of 45S5-Based Bioactive Glass–Ceramic Scaffolds
Materials
bioactive glass
scaffold
bioceramics
mechanical properties
elastic modulus
porosity
modelling
author_facet Francesco Baino
Elisa Fiume
author_sort Francesco Baino
title Elastic Mechanical Properties of 45S5-Based Bioactive Glass–Ceramic Scaffolds
title_short Elastic Mechanical Properties of 45S5-Based Bioactive Glass–Ceramic Scaffolds
title_full Elastic Mechanical Properties of 45S5-Based Bioactive Glass–Ceramic Scaffolds
title_fullStr Elastic Mechanical Properties of 45S5-Based Bioactive Glass–Ceramic Scaffolds
title_full_unstemmed Elastic Mechanical Properties of 45S5-Based Bioactive Glass–Ceramic Scaffolds
title_sort elastic mechanical properties of 45s5-based bioactive glass–ceramic scaffolds
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2019-10-01
description Porosity is recognized to play a key role in dictating the functional properties of bioactive scaffolds, especially the mechanical performance of the material. The mechanical suitability of brittle ceramic and glass scaffolds for bone tissue engineering applications is usually evaluated on the basis of the compressive strength alone, which is relatively easy to assess. This work aims to investigate the porosity dependence of the elastic properties of silicate scaffolds based on the 45S5 composition. Highly porous glass−ceramic foams were fabricated by the sponge replica method and their elastic modulus, shear modulus, and Poisson’s ratio were experimentally determined by the impulse excitation technique; furthermore, the failure strength was quantified by compressive tests. As the total fractional porosity increased from 0.52 to 0.86, the elastic and shear moduli decreased from 16.5 to 1.2 GPa and from 6.5 to 0.43 GPa, respectively; the compressive strength was also found to decrease from 3.4 to 0.58 MPa, whereas the Poisson’s ratio increased from 0.2692 to 0.3953. The porosity dependences of elastic modulus, shear modulus and compressive strength obeys power-law models, whereas the relationship between Poisson’s ratio and porosity can be described by a linear approximation. These relations can be useful to optimize the design and fabrication of porous biomaterials as well as to predict the mechanical properties of the scaffolds.
topic bioactive glass
scaffold
bioceramics
mechanical properties
elastic modulus
porosity
modelling
url https://www.mdpi.com/1996-1944/12/19/3244
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