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首页> 外文期刊>European Polymer Journal >Role of surface modification and mechanical orientation on property enhancement of cellulose nanocrystalsipolymer nanocomposites
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Role of surface modification and mechanical orientation on property enhancement of cellulose nanocrystalsipolymer nanocomposites

机译:表面改性和机械取向对纤维素纳米晶聚合物纳米复合材料性能增强的作用

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摘要

Cellulose nanocrystals (CNCs), surface-modified by grafting long alkyl chain amine onto carboxylated CNCs, have been applied as novel nanofillers to prepare nanocomposite films of poly(ethylene-co-vinylacetate) (EVA) through solution casting technique. The robust amide linkages imparted hydrophobicity to the nanocrystal surface and allowed for a better dispersion of CNCs within the EVA matrix. Atomic force microscopy (AFM) surface images and polarized optical micrographs showed that the nanocrystals were randomly oriented in the plane of the EVA film. To achieve the alignment of anisotropic nanofillers, we carried out mechanical shear experiments at an elevated temperature well above the glass-transition temperature of matrix polymer. Hot-pressing and hot-stretching resulted in preferential reorientation of nanocrystals, but not along the shear direction, which is related to the combined actions between the external tension and intermolecular interaction of amide-modified CNC during shear processing. As a result, external mechanical stress transferred from the matrix to the particles, leading to a preferential orientation of the latter. Mechanical and water vapor barrier properties were found to be drastically enhanced. The amide-based CNC/EVA showed high level of elongation at break (up to 85% retention of the initial values). These enhancements were tentatively attributed to the strong interaction occurring at the interface between CNC amide and the EVA polymer. (C) 2014 Elsevier Ltd. All rights reserved.
机译:通过将长链烷基胺接枝到羧基化CNC上进行表面改性的纤维素纳米晶体(CNC)已被用作新型纳米填料,通过溶液流延技术制备了聚(乙烯-共-乙酸乙烯酯)(EVA)纳米复合膜。坚固的酰胺键将疏水性赋予纳米晶体表面,并使CNC更好地分散在EVA基质中。原子力显微镜(AFM)的表面图像和偏振光学显微镜照片显示,纳米晶体在EVA膜平面内随机取向。为了实现各向异性纳米填料的排列,我们在远高于基体聚合物的玻璃化转变温度的高温下进行了机械剪切实验。热压和热拉伸导致纳米晶体的优先重新取向,而不是沿着剪切方向,这与剪切过程中酰胺修饰的CNC的外张力和分子间相互作用之间的联合作用有关。结果,外部机械应力从基质转移到颗粒,导致颗粒的优先取向。发现机械和水蒸气阻隔性能大大提高。基于酰胺的CNC / EVA表现出高水平的断裂伸长率(保留高达85%的初始值)。这些增强作用暂时归因于在CNC酰胺和EVA聚合物之间的界面处发生的强相互作用。 (C)2014 Elsevier Ltd.保留所有权利。

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