Influence of the Addition of Zinc, Strontium, or Magnesium Oxides to the Bioglass 45S5 Network on Electrical Behavior
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Published:2024-01-20
Issue:2
Volume:17
Page:499
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ISSN:1996-1944
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Container-title:Materials
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language:en
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Short-container-title:Materials
Author:
Gavinho Sílvia Rodrigues1ORCID, Hammami Imen1ORCID, Jakka Suresh Kumar1ORCID, Teixeira Sílvia Soreto1ORCID, Silva Jorge Carvalho2ORCID, Borges João Paulo3ORCID, Graça Manuel Pedro Fernandes1ORCID
Affiliation:
1. I3N and Physics Department, Aveiro University, 3810-193 Aveiro, Portugal 2. I3N-CENIMAT and Physics Department, NOVA School of Science and Technology, Campus de Caparica, 2829-516 Caparica, Portugal 3. I3N-CENIMAT and Materials Science Department, NOVA School of Science and Technology, Campus de Caparica, 2829-516 Caparica, Portugal
Abstract
45S5 Bioglass has been widely used in regenerative medicine due to its ability to dissolve when inserted into the body. Its typically amorphous structure allows for an ideal dissolution rate for the formation of the hydroxyapatite layer, which is important for the development of new bone. This bioactive capacity can also be controlled by adding other oxides (e.g., SrO, ZnO, and MgO) to the 45S5 Bioglass network or by storing electrical charge. Ions such as zinc, magnesium, and strontium allow for specific biological responses to be added, such as antibacterial action and the ability to increase the rate of osteoblast proliferation. The charge storage capacity allows for a higher rate of bioactivity to be achieved, allowing for faster attachment to the host bone, decreasing the patient’s recovery time. Therefore, it is necessary to understand the variation in the structure of the bioglass with regard to the amount of non-bridging oxygens (NBOs), which is important for the bioactivity rate not to be compromised, and also its influence on the electrical behavior relevant to its potential as electrical charge storage. Thus, several bioactive glass compositions were synthesized based on the 45S5 Bioglass formulation with the addition of various concentrations (0.25, 0.5, 1, and 2, mol%) of zinc, strontium, or magnesium oxides. The influence of the insertion of these oxides on the network was evaluated by studying the amount of NBOs using Raman spectroscopy and their implication on the electrical behavior. Electrical characterization was performed in ac (alternating current) and dc (direct current) regimes.
Funder
FEDER funds through the COMPETE 2020 Program and National Funds through the FCT—Portuguese Foundation for Science and Technology Associate Laboratory Institute of Nanostructures, Nanomodelling and Nanofabrication—i3N Research Unit on Applied Molecular Biosciences—UCIBIO Associate Laboratory Institute for Health and Bioeconomy—i4HB FCT—Portuguese Foundation for Science and Technology FCT—Fundaçao para a Ciência e a Tecnologia
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