Mechanical and Thermal Properties of Biodegradable Composites Based on graft copolymer LLDPE-g-MA/Gelatin

N. Normurodov, Q. Berdinazarov, M. Abdurazakov, N. Ashurov
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Abstract

The uncontrolled development of morphology at the stage of formation of biodegradable compositions based on synthetic and natural polymers limits the possibility of achieving satisfactory physical, mechanical and op-erational characteristics. In the present work, to achieve finely dispersed mixture morphology, an approach was proposed for reactive mixing of functionalized polyethylene with gelatin to form a linear low density polyethylene-grafted-maleic anhydride and gelatin (LLDPE-g-MA/GEL) graft copolymer. Using the selective extraction of the mixture components, we determined amount of graft copolymer LLDPE-g-MA/GEL, free gelatin, mechanical and thermal properties, as well as biodegradability data. It was found that as the amount of maleic groups in the polyethylene macromolecule increased, the amount of graft copolymer increased, and an increase in the content of gelatin in the blend led to a noticeable increase in the elastic modulus, tensile strength, and a decrease in elongation at break. Due to the degradation of gelatin, the thermal stability of the composite (initial temperature) decreased with increasing gelatin content. The maximum rate of destruction of the graft copolymer in the temperature range of 400–500 ºC increased markedly with an increase in the content of gelatin. It was found that the rate of biodegradability would increase with an increase in the content of gelatin in the blend; the maximum level of degradation was observed during the first 10 days and was more than 50 %. It was found that the maximum degree of grafting LLDPE-g-MA and gelatin to each other de-pended on the amount of maleic anhydride in the graft copolymer. The maximum degree of grafting was ob-served to be higher with increasing amount of maleic anhydride in the composites.
基于接枝聚合物LLDPE-g-MA/明胶的可生物降解复合材料的力学和热性能
在形成基于合成和天然聚合物的可生物降解组合物的阶段,形态的不受控制的发展限制了实现令人满意的物理、机械和操作特性的可能性。在本工作中,为了实现精细分散的混合物形态,提出了一种将功能化聚乙烯与明胶反应混合的方法,以形成线性低密度聚乙烯-接枝马来酸酐-明胶(LLDPE-g-MA/GEL)接枝共聚物。通过对混合物组分的选择性提取,我们测定了接枝共聚物LLDPE-g-MA/GEL、游离明胶的用量、机械性能和热性能,以及生物降解性数据。研究发现,随着聚乙烯大分子中马来烯基含量的增加,接枝共聚物的数量增加,共混物中明胶含量的增加导致其弹性模量、抗拉强度明显增加,断裂伸长率明显降低。由于明胶的降解,复合材料的热稳定性(初始温度)随着明胶含量的增加而降低。随着明胶含量的增加,接枝共聚物在400 ~ 500℃范围内的最大破坏速率显著增加。研究发现,随着明胶含量的增加,生物降解率也随之提高;在前10天观察到最大程度的降解,超过50%。结果表明,LLDPE-g-MA与明胶的最大接枝程度取决于接枝共聚物中马来酸酐的用量。随着马来酸酐用量的增加,复合材料的最大接枝度越高。
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