LS3M, Faculté Polydisciplinaire Khouribga, Sultan Moulay Slimane University of Beni Mellal, B.P 145, 25000 Khouribga, Morocco.
Department of Materials Science Engineering, Institute I: General Materials Properties, Friedrich-Alexander-Universität Erlangen-Nürnberg, 91058 Erlangen, Germany.
Phys Chem Chem Phys. 2021 Jul 21;23(28):15292-15301. doi: 10.1039/d1cp02192c.
Glasses have applications in regenerative medicine due to their bioactivity, enabling interactions with hard and soft tissues. Soda-lime phosphosilicate glasses, such as 45S5, represent a model system of bioactive glasses. Regardless of their importance as bioactive materials, the relationship between the structure, density, and cooling process has not been studied in detail. This hinders further development of glasses as biomaterials. We used molecular dynamics simulations to study the elastic and structural properties of densified 45S5 bioactive glass and liquids over a wide range of densities. We performed a systematic analysis of the glass structure to density relationship to correlate the change in the properties with the structural change to enhance the mechanical properties of bioactive glasses while preserving their bioactive nature. The results show that the glass structure tends to be repolymerized, as indicated by increased network connectivity and a tetrahedral to octahedral polyhedral transition. We were able to tailor the elastic properties while keeping the bioactivity of the glass. The results presented here will provide some guidance to develop bioactive glasses with enhanced mechanical properties.
眼镜在再生医学中有应用,因为它们具有生物活性,能够与硬组织和软组织相互作用。钠钙磷硅玻璃,如 45S5,是生物活性玻璃的典型代表。无论它们作为生物活性材料有多重要,其结构、密度和冷却过程之间的关系尚未得到详细研究。这阻碍了玻璃作为生物材料的进一步发展。我们使用分子动力学模拟来研究致密化 45S5 生物活性玻璃和液体在广泛密度范围内的弹性和结构特性。我们对玻璃结构与密度关系进行了系统分析,将性质的变化与结构的变化相关联,以提高生物活性玻璃的机械性能,同时保持其生物活性。结果表明,玻璃结构趋于重聚合,表现为网络连接性增加和四面体到八面体多面体的转变。我们能够在保持玻璃生物活性的同时调整弹性性能。这里呈现的结果将为开发具有增强机械性能的生物活性玻璃提供一些指导。