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迈向生物复合材料回收:PCL-纤维素生物复合材料中的局部界面降解及其缓解。

Toward Biocomposites Recycling: Localized Interphase Degradation in PCL-Cellulose Biocomposites and its Mitigation.

机构信息

Wallenberg Wood Science Center, WWSC, Department of Fibre and Polymer Technology, KTH Royal Institute of Technology, Teknikringen 56-58, 100 44 Stockholm, Sweden.

出版信息

Biomacromolecules. 2020 May 11;21(5):1795-1801. doi: 10.1021/acs.biomac.9b01704. Epub 2020 Jan 24.

Abstract

Recyclable biocomposites based on degradable polymer systems and cellulosic plant fibers are attractive in a sustainable society, because of enhanced polymer properties and also from an end-of-life perspective. Improved understanding is required for how the degradable polymer matrix is affected during compounding in addition to effects from the cellulosic fiber structure and its chemical nature. This work reveals that a poly(ε-caprolactone) matrix undergoes localized, heterogeneous polymer degradation in the fiber-matrix interphase region during melt-compounding. The extent of localized degradation correlates with the initial moisture content in the wood cellulose fiber, where moisture content is controlled by different fiber modification methods by PCL-grafting. As an effect, high moisture content results in a destabilized and degraded fiber-matrix interphase. This was found through careful analysis of how the polymer population changed after compounding, using two different methods: molar mass distribution from SEC and end-group concentration from NMR. The results are important not only with regard to fiber/matrix interface compatibility but also to understand fiber modification for improved biocomposites recycling.

摘要

基于可降解聚合物体系和纤维素植物纤维的可回收生物复合材料在可持续社会中具有吸引力,因为它们可以提高聚合物性能,从生命周期结束的角度来看也是如此。除了纤维素纤维结构及其化学性质的影响外,还需要更好地了解可降解聚合物基体在共混过程中是如何受到影响的。这项工作表明,聚(ε-己内酯)基体在熔融共混过程中,在纤维-基体界面区域发生局部、不均匀的聚合物降解。局部降解的程度与木质纤维素纤维的初始水分含量相关,而水分含量可以通过 PCL 接枝的不同纤维改性方法来控制。结果是,高水分含量导致纤维-基体界面不稳定和降解。这是通过仔细分析共混后聚合物群体如何变化来发现的,使用了两种不同的方法:SEC 的摩尔质量分布和 NMR 的端基浓度。这些结果不仅对纤维/基体界面相容性很重要,而且对理解纤维改性以实现可回收生物复合材料的改进也很重要。

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