Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, Montréal, QC, H3G 1M8, Canada.
Department of Mining and Materials Engineering, McGill University, Wong Building, 3610 Rue University, Montréal, QC, H3A 0C5, Canada.
J Mater Sci Mater Med. 2021 Jun 22;32(7):76. doi: 10.1007/s10856-021-06553-3.
Although the incorporation of bioactive glasses into glass ionomer cements (GICs) has led to promising results, using a bioactive glass as the only solid component of GICs has never been investigated. In this study, we developed an Al-free GIC with standard compressive strength using various combinations of 45S5 Bioglass and its glass-ceramic as the solid component. The glass-ceramic particles with 74% crystallinity were used for this purpose as they can best act as both remineralizing and reinforcing agents. Strengthening mechanisms including crack deflection and crack-tip shielding were activated for the GICs containing 50-50 wt% bioglass and bioglass-ceramic as the optimum ratio. The progression of the GIC setting reaction at its early stages was also monitored and verified. We also discussed that our bimodal particle size distribution containing both micron- and nanosized particles may enhance the packing density and integrity of the structure of the cements after setting. In such GICs produced in this study, the toxic effects of Al are avoided while chemical bonds are expected to form between the cement and the surrounding hard tissue(s) through interfacial biomineralization and adhesion.
尽管将生物活性玻璃掺入玻璃离子水门汀(GICs)中已经取得了令人鼓舞的结果,但从未有人研究过将生物活性玻璃作为 GICs 的唯一固体成分使用。在本研究中,我们使用各种 45S5 Bioglass 及其玻璃陶瓷组合开发了一种具有标准抗压强度的无铝 GIC。为此目的使用了具有 74%结晶度的微晶玻璃颗粒,因为它们可以最好地充当再矿化和增强剂。对于含有 50-50wt%生物玻璃和生物玻璃陶瓷作为最佳比例的 GICs,激活了包括裂纹偏转和裂纹尖端屏蔽在内的强化机制。还监测和验证了 GIC 初始阶段的设置反应的进展情况。我们还讨论了我们的双模态粒度分布,其中包含微米和纳米级颗粒,可能会增强凝固后水泥的结构的堆积密度和完整性。在本研究中生产的此类 GIC 中,避免了 Al 的毒性影响,并且预计通过界面生物矿化和粘附,水泥与周围硬组织之间将形成化学键。