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Synthesis, characterization and properties of biocompatible poly(glycerol sebacate) pre-polymer and gel

机译:生物相容性聚癸二酸甘油酯预聚物和凝胶的合成,表征和性能

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Poly(glycerol sebacate) (PGS) is an elastomer with potential biomedical applications but it suffers from problems with irreproducible synthesis and the unacceptable toxicity of very soft PGS elastomers. To establish the reason for these problems, PGS was synthesized using different temperatures and reaction times, and the reaction was monitored by titration of the unreacted carboxylic groups and measurement of the mass loss during synthesis. It was found that evaporation of glycerol was a major cause of irreproducibility of the elastomer synthesis and this was more significant at higher reaction temperatures. The polymer microstructure was analysed using NMR spectroscopy and all twelve acylglyceride ~(13)C-signals as well as two small extra peaks of the residual glycerol were observed for the pre-polymer. For the PGS gel, the glyceride moieties were characterized using NMR spectroscopy for the first time. The modulus and ultimate tensile strength of the gel increased with longer cure times and at higher cure temperatures while the elongation to break decreased and this was interpreted in terms of network theory. The cell viability of mouse fibroblasts was better for PGS samples with a higher conversion.
机译:聚癸二酸甘油酯(PGS)是具有潜在生物医学应用的弹性体,但是它存在合成方法不可再现以及非常柔软的PGS弹性体具有无法接受的毒性的问题。为了确定这些问题的原因,使用不同的温度和反应时间合成了PGS,并通过滴定未反应的羧基和测量合成过程中的质量损失来监控反应。发现甘油的蒸发是弹性体合成的不可再现性的主要原因,并且在更高的反应温度下更明显。使用NMR光谱法分析聚合物的微观结构,并且对于预聚物观察到全部十二个酰基甘油酯〜(13)C信号以及残留甘油的两个小的额外峰。对于PGS凝胶,首次使用NMR光谱对甘油酯部分进行了表征。凝胶的模量和极限拉伸强度随着固化时间的延长和固化温度的升高而增加,而断裂伸长率则下降,这可以用网络理论来解释。对于具有较高转化率的PGS样品,小鼠成纤维细胞的细胞活力更好。

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