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通过混合磷酸盐玻璃配方的掺入来调节聚己内酯复合材料的性能。

Modulation of polycaprolactone composite properties through incorporation of mixed phosphate glass formulations.

机构信息

Department of Mining and Materials Engineering, McGill University, Montreal, Canada H3A 2B2.

出版信息

Acta Biomater. 2010 Aug;6(8):3157-68. doi: 10.1016/j.actbio.2010.03.002. Epub 2010 Mar 3.

Abstract

Phosphate-based glasses (PGs) and their composites are of interest as bone repair and tissue engineering scaffolds due to the totally degradable nature of the materials. This study has investigated the effect of Si and Fe on the properties of PG particulate-filled polycaprolactone (PCL) matrix composites. Two glass compositions were investigated (mol.%): 50P(2)O(5), 40CaO and 10SiO(2) or Fe(2)O(3) (Si(10) and Fe(10), respectively). All composites contained 40 vol.% particulate filler, either Si(10), Fe(10), or a blend (40Si(10)/0Fe(10), 30Si(10)/10Fe(10), 20Si(10)/20Fe(10), 10Si(10)/30Fe(10) or 0Si(10)/40Fe(10)). Ion release, weight loss and composite mechanical properties were characterised as a function of time in deionised water (DW) and phosphate-buffered saline (PBS), respectively. The potential for calcium phosphate deposition was assessed in simulated body fluid (SBF). Calcium and phosphate ion release in DW increased in tandem with the rate of composite weight loss, which increased with Si(10) content. A Si(10) content dependent rate of pH reduction was observed in DW. After 56 days the PG in the 40Si(10)/0Fe(10) composite was completely dissolved, whereas 67% of that in the 0Si(10)/40Fe(10) composite remained. The initial flexural strength of 40Si(10)/0Fe(10) composites was significantly lower when compared with the other materials. An increase in Si(10) content led to an increase in Young's modulus and a concomitant decrease in flexural strain. It was found that the PCL molecular weight (M(w)) decreased dramatically with increasing Si(10) content. FTIR analysis showed that Si incorporation into PG led to reaction with the PCL ester bonds, resulting in a reduction in PCL M(w) when processed at elevated temperatures. Changes in mechanical properties with time in PBS were glass blend dependent and a more rapid rate of reduction was observed in higher Si(10) content composites. After 28 days in SBF surface deposited brushite was formed in 20Si(10)/20Fe(10) PG containing composites. Thus, the properties of PCL-PG composites could be tailored by controlling the phosphate glass blend composition.

摘要

基于磷酸盐的玻璃(PGs)及其复合材料因其材料的完全可降解性质而成为骨修复和组织工程支架的研究热点。本研究研究了 Si 和 Fe 对 PG 颗粒填充聚己内酯(PCL)基体复合材料性能的影响。研究了两种玻璃组成(摩尔%):50P(2)O(5),40CaO 和 10SiO(2)或 Fe(2)O(3)(分别为 Si(10)和 Fe(10))。所有复合材料均含有 40 体积%的颗粒状填料,为 Si(10)、Fe(10)或混合物(40Si(10)/0Fe(10)、30Si(10)/10Fe(10)、20Si(10)/20Fe(10)、10Si(10)/30Fe(10)或 0Si(10)/40Fe(10))。分别在去离子水(DW)和磷酸盐缓冲盐水(PBS)中,通过离子释放、失重和复合材料力学性能的特征来研究时间的影响。在模拟体液(SBF)中评估了磷酸钙沉积的潜力。DW 中 Ca 和 PO43-离子的释放与复合材料失重率同步增加,而失重率则随 Si(10)含量的增加而增加。在 DW 中观察到 Si(10)含量依赖性的 pH 值降低速率。56 天后,40Si(10)/0Fe(10)复合材料中的 PG 完全溶解,而 0Si(10)/40Fe(10)复合材料中仍有 67%的 PG 残留。与其他材料相比,40Si(10)/0Fe(10)复合材料的初始弯曲强度明显降低。随着 Si(10)含量的增加,杨氏模量增加,弯曲应变相应降低。发现随着 Si(10)含量的增加,PCL 的分子量(Mw)急剧降低。FTIR 分析表明,Si 掺入 PG 导致与 PCL 酯键反应,从而在高温下加工时降低 PCL 的 Mw。在 PBS 中随时间变化的机械性能取决于玻璃混合物的组成,并且在 Si(10)含量较高的复合材料中观察到更快的降低速率。在 SBF 中 28 天后,在含有 20Si(10)/20Fe(10)PG 的复合材料表面形成了 brushite。因此,可以通过控制磷酸盐玻璃混合物的组成来调整 PCL-PG 复合材料的性能。

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