Obtaining and Characterization of Biodegradable Composites Reinforced with Microcrystalline Cellulose Fillers

Lucas Viana Costa, G. Iulianelli, P. S. R. C. da Silva, F. A. Dos Santos
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引用次数: 1

Abstract

In recent years, there has been a growing discussion about the problems related to the massive use of many synthetic plastic materials, which inevitably leads to an increase in environmental pollution caused by the inappropriate disposal of these materials. In this sense, biodegradable materials have been a subject of great interest, as they are a real alternative to replace these materials and tackle this issue. In this work, fully biodegradable composites were prepared by solution casting method. Microcrystalline cellulose (MCC) and treated microcrystalline cellulose (TMCC) were separately incorporated into biodegradable PLA and PHB matrices at ratios of 3, 5 and 7 wt% and the properties of the obtained biocomposites were evaluated by TGA, DSC, XRD and TD-NMR. From thermal analyses, it was seen that TMCC resulted in better thermal stability and 3 wt% of filler, in general, promoted a more pronounced thermal improvement. Furthermore Tg, Tc and Tm remained practically unchanged after MCC and TMCC addition. From XRD it was seen that the cellulose fillers influence in different ways the matrices, promoting increase or decrease in the degree of crystallinity. Finally, the results obtained by TD-NMR showed a decrease in the T 1 H values for all prepared biocomposites, indicating a good dispersion of the cellulose fillers in the matrices and pointed that the systems containing 3 wt% of cellulose fillers were the most homogeneous formulations.
微晶纤维素填料增强可生物降解复合材料的制备与表征
近年来,人们对大量使用合成塑料材料所引起的问题进行了越来越多的讨论,这些问题不可避免地导致了环境污染的增加,这是由于对这些材料的不当处理。从这个意义上说,可生物降解材料一直是一个非常有趣的主题,因为它们是替代这些材料并解决这个问题的真正替代品。本研究采用溶液铸造法制备了完全可生物降解的复合材料。将微晶纤维素(MCC)和处理过的微晶纤维素(TMCC)分别以3、5和7 wt%的比例掺入可生物降解的PLA和PHB基质中,并通过TGA、DSC、XRD和TD-NMR对所得生物复合材料的性能进行了评价。从热分析中可以看出,TMCC具有更好的热稳定性,而3wt %的填料通常促进了更明显的热改善。此外,添加MCC和TMCC后,Tg、Tc和Tm基本保持不变。XRD分析表明,纤维素填料对基体的结晶度有不同程度的影响,促进了结晶度的增加或降低。最后,通过TD-NMR得到的结果表明,所有制备的生物复合材料的t1 H值都有所降低,这表明纤维素填料在基质中的分散性良好,并指出含有3 wt%纤维素填料的体系是最均匀的配方。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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