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首页> 外文期刊>European Polymer Journal >Enhanced homogeneity and interfacial compatibility in melt-extruded cellulose nano-fibers reinforced polyethylene via surface adsorption of poly(ethylene glycol)-block-poly (ethylene) amphiphiles
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Enhanced homogeneity and interfacial compatibility in melt-extruded cellulose nano-fibers reinforced polyethylene via surface adsorption of poly(ethylene glycol)-block-poly (ethylene) amphiphiles

机译:熔融挤出的纤维素纳米纤维增强聚乙烯中的均一性和界面相容性,通过聚乙二醇-嵌段-聚(乙烯)两亲物的表面吸附来实现

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摘要

In this paper, we demonstrate that an amphiphilic block copolymer such as polyethylene glycol-b-polyethylene can be used as both dispersing and interfacial compatibilizing agent for the melt compounding of LLDPE with cellulose nano-fibers. A simple and effective spray drying methodology was first used for the first time for the preparation of a powdered cellulose nano-fibers extrusion feedstock. Surface adsorption of the amphiphilic PEG-b-PE was carried out directly in solution during this process. These various dry cellulosic feedstock were subsequently combined with LLDPE via extrusion to produce a range of nanocomposites. The collective outcomes of this research are several folds. Firstly we show that presence of surface adsorbed PEG-b-PE effectively hindered the aggregation of the cellulose nano-fibers during the extrusion, affording clear homogenous materials with minimum aggregation even at the highest loading of cellulose nano-fibers (similar to 23 vol.%). Secondly, the tailored LLDPE/cellulose interface arising from intra- and inter-molecular hydrogen and Van der Waals bonds yielded significant levels of mechanical improvements in terms of storage and tensile modulus. We believe this study provides a simple technological template to produce high quality and performant polyolefins cellulose-based nano-composites. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在本文中,我们证明了两亲性嵌段共聚物(例如聚乙二醇-b-聚乙烯)既可以用作分散剂,也可以用作界面相容剂,用于LLDPE与纤维素纳米纤维的熔融共混。首次首次将一种简单有效的喷雾干燥方法用于制备粉末状纤维素纳米纤维挤出原料。在此过程中,两亲性PEG-b-PE的表面吸附直接在溶液中进行。随后,通过挤压将这些各种干纤维素原料与LLDPE混合,以生产一系列纳米复合材料。这项研究的总体成果有几个方面。首先,我们表明表面吸附的PEG-b-PE的存在有效地阻碍了挤出过程中纤维素纳米纤维的聚集,即使在纤维素纳米纤维的最高负载下(类似于23 vol。 %)。其次,由分子内和分子间氢键和范德华键形成的量身定制的LLDPE /纤维素界面在储能和拉伸模量方面产生了显着水平的机械改进。我们相信这项研究提供了一个简单的技术模板,可以生产高质量和高性能的聚烯烃纤维素基纳米复合材料。 (C)2015 Elsevier Ltd.保留所有权利。

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