Matinfar Marzieh, Nychka John A
Department of Chemical and Materials Engineering, University of Alberta, Edmonton, AB T6G 1H9, Canada.
Gels. 2024 Oct 21;10(10):673. doi: 10.3390/gels10100673.
Fabricating large-scale porous bioactive glass bone scaffolds presents significant challenges. This study aims to develop formable, in situ setting scaffolds with a practical gelation time of about 10 min by mixing 45S5 bioactive glass with sodium silicate (waterglass) and an acid initiator. The effects of pH (2-11), waterglass concentration (15-50 wt.%), and acid initiator type (phosphoric or boric acid) were examined to optimize gelation kinetics and microstructure. A 10 min gelation time was achieved with boric acid and phosphoric acid at various pH levels by adjusting the waterglass concentration. Exponential and polynomial models were proposed to predict gelation times in basic and acidic environments, respectively. The optical properties of the gels were studied qualitatively and quantitatively, providing insights into gelation kinetics and structure. Acidic gels formed smaller particles in a dense network (pores < 550 nm) with higher light transmittance, while basic gels had larger aggregates (pores ~5 µm) and lower transmittance. As the waterglass concentration decreased, pore size and transmittance converged in both groups. The onset of gelation was detected around 8 min using the derivative of light transmittance. This work identifies the key factors controlling waterglass gelation and their impact on gel structure, enabling the tailored creation of formable, in situ setting bioactive glass bone scaffolds.
制造大规模多孔生物活性玻璃骨支架面临重大挑战。本研究旨在通过将45S5生物活性玻璃与硅酸钠(水玻璃)和酸引发剂混合,开发出具有约10分钟实用胶凝时间的可成型原位固化支架。研究了pH值(2 - 11)、水玻璃浓度(15 - 50 wt.%)和酸引发剂类型(磷酸或硼酸)对胶凝动力学和微观结构的影响,以优化胶凝过程。通过调整水玻璃浓度,在不同pH值下使用硼酸和磷酸均可实现10分钟的胶凝时间。分别提出了指数模型和多项式模型来预测碱性和酸性环境中的胶凝时间。对凝胶的光学性质进行了定性和定量研究,为胶凝动力学和结构提供了见解。酸性凝胶在致密网络中形成较小颗粒(孔径<550 nm),具有较高的透光率,而碱性凝胶具有较大聚集体(孔径约5 µm)和较低透光率。随着水玻璃浓度降低,两组的孔径和透光率趋于一致。使用透光率导数在约8分钟时检测到胶凝开始。这项工作确定了控制水玻璃胶凝的关键因素及其对凝胶结构的影响,能够定制创建可成型的原位固化生物活性玻璃骨支架。