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PROCESSING-STRUCTURE-PROPERTY RELATIONSHIPS IN CELLULOSE NANOCRYSTAL/POLY(ETHLYENE-CO-VINYL ALCOHOL) COMPOSITES

机译:纤维素纳米/聚乙烯(乙烯-乙烯-乙烯醇)复合材料的加工-结构-性能关系

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Cellulose nanocrystals (CNCs) are nanoparticles of renewed interest in the composites community. Their abundance, renewable source material, and expected mechanical properties have motivated a large number of studies to understand how to use them effectively in composite applications. While these materials have desirable properties, they also present some challenges when considering them as a reinforcement for polymer composites. Specifically, they are not inherently compatible with most polymers, and they have a relatively low thermal decomposition temperature. Both of these factors inform the choice of suitable polymer matrices. The objective of this work is to explore possible materials selection and processing strategies for using them in nanocomposites. In this research, CNCs were paired with two different poly(ethylene-co-vinyl alcohol) (EVOH) polymers and processed using three complementary strategies to understand the processing-structure-property relationships of these materials. The different EVOH polymers had different amounts of the comonomers, ethylene and vinyl alcohol. Through these studies, it was observed that a combined solution and melt processing method produced materials with the highest levels of CNC dispersion and most favorable viscoelastic properties. Additionally, the matrix choice influenced the levels of dispersion observed. The CNCs would be expected to have a higher level of interaction with the EVOH polymer containing more vinyl alcohol, and the results indicated that this expectation was correct. The nanocomposite containing CNCs and the EVOH polymer containing more vinyl alcohol showed structuring of the matrix with CNC addition. These changes in dispersion and component interactions manifested themselves in the viscoelastic properties measured with dynamic mechanical analysis. Changes in the glass transition temperature and storage modulus below the glass transition temperature were observed. Overall, these results provide insight into how nanocomposite design parameters and processing strategies can be combined to produce improved properties, expanding the application space of CNC composites.
机译:纤维素纳米晶体(CNC)是复合材料社区中重新引起关注的纳米颗粒。它们的丰富性,可再生原料和预期的机械性能促使许多研究了解如何在复合应用中有效地使用它们。尽管这些材料具有理想的性能,但当将它们用作聚合物复合材料的增强材料时,它们也带来了一些挑战。特别地,它们与大多数聚合物固有地不相容,并且它们具有相对较低的热分解温度。这两个因素都决定了合适的聚合物基质的选择。这项工作的目的是探索在纳米复合材料中使用它们的可能的材料选择和加工策略。在这项研究中,CNC与两种不同的聚(乙烯-共-乙烯醇)(EVOH)聚合物配对,并使用三种互补策略进行加工,以了解这些材料的加工-结构-性能关系。不同的EVOH聚合物具有不同量的共聚单体,乙烯和乙烯醇。通过这些研究,可以观察到,溶液和熔体加工相结合的方法所产生的材料具有最高的CNC分散度和最有利的粘弹性。另外,基质的选择会影响观察到的分散程度。预计CNC控制器与包含更多乙烯醇的EVOH聚合物具有更高的相互作用水平,结果表明该期望是正确的。含有CNC的纳米复合材料和含有更多乙烯醇的EVOH聚合物在添加CNC的情况下显示出基质的结构。分散和组分相互作用的这些变化在通过动态力学分析测得的粘弹性中表现出来。观察到玻璃化转变温度和低于玻璃化转变温度的储能模量的变化。总的来说,这些结果提供了对如何组合纳米复合材料设计参数和加工策略以产生改进的性能,扩展CNC复合材料的应用空间的见解。

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