Influence of surface treatments and addition of a reactive agent on the properties of PLA/flax and PLA/bamboo composites

Hervé Nlandu-Mayamba, A. Taguet, Didier Perrin, Sébastien Joannès, Florence Delor-Jestin, H. Askanian, J. Lopez‐Cuesta
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Abstract

Polylactic acid (PLA) composites reinforced with 10 wt% of flax (FF) or bamboo (BF) fibers were prepared via an internal mixer and/or twin-screw extrusion. Alkali pretreated fibers were soaked in silane to improve adhesion between fibers and matrix. 0.8 wt% of Joncryl™, a grafted copolymer acting as PLA chain extender, was also used alone or in combination with silane treatment of fibers to improve interfacial adhesion. The influence of silane treatment and/or Joncryl on the composite materials on mechanical, thermal and thermomechanical properties of materials processed through injection molding was investigated. Improved adhesion of the fibers to the matrix was shown using a scanning electron microscope. Fourier Transform Infrared Spectroscopy indicated that chemical bonds were formed between the silane coupling agent and fibers. X-ray Photo-electron Spectroscopy confirmed that fibers and silane derivatives were effectively coupled. XPS also highlighted that silane coupling agent reacted in higher amounts on bamboo than flax fibers, probably due to a higher amount of lignin in the case of bamboo fibers. Thermogravimetric analyses indicated that silane-treated flax and bamboo increased the thermal stability of the corresponding composites (PLA-SFF and PLA-SFB) compared to non-treated fiber composites. The incorporation of Joncryl alone entailed a degradation of the thermal stability of the corresponding composites (PLAJ-FF and PLAJ-FB) but enhanced the PLA/fibers interfacial adhesion. The combination of Joncryl and silane treatment resulted in strong improvements of thermal stability and interfacial adhesion for the PLAJ-SFF and PLAJ-SBF composites. Increase in tensile moduli and decrease in tensile strengths with the incorporation of the pristine fibers were noted. For silane-treated fibers, the tensile modulus and the strength of the corresponding composites were improved when adding Joncryl alone or in combination with silane. From also rheological and molar weight measurements, it could be concluded that Joncryl acts both as PLA chain extender and coupling agent.
表面处理和添加反应剂对聚乳酸/亚麻和聚乳酸/竹复合材料性能的影响
通过内部混合器和/或双螺杆挤压法制备了用 10 wt% 的亚麻(FF)或竹(BF)纤维增强的聚乳酸(PLA)复合材料。碱预处理纤维浸泡在硅烷中,以提高纤维与基体之间的粘附性。还单独使用或结合硅烷处理纤维使用 0.8 wt% 的接枝共聚物 Joncryl™(聚乳酸链延伸剂)来改善界面粘附性。研究了硅烷处理和/或 Joncryl 对通过注塑成型加工的复合材料的机械、热和热机械性能的影响。扫描电子显微镜显示纤维与基体的粘附性得到了改善。傅立叶变换红外光谱显示,硅烷偶联剂与纤维之间形成了化学键。X 射线光电子能谱证实,纤维和硅烷衍生物已有效耦合。X 射线光电子能谱还显示,硅烷偶联剂在竹纤维上的反应量高于亚麻纤维,这可能是由于竹纤维中的木质素含量较高。热重分析表明,与未经处理的纤维复合材料相比,经过硅烷处理的亚麻和竹纤维提高了相应复合材料(聚乳酸-SFF 和聚乳酸-SFB)的热稳定性。单独加入 Joncryl 会降低相应复合材料(PLAJ-FF 和 PLAJ-FB)的热稳定性,但会增强聚乳酸/纤维的界面粘附性。结合使用 Joncryl 和硅烷处理可显著提高 PLAJ-SFF 和 PLAJ-SBF 复合材料的热稳定性和界面粘附性。加入原始纤维后,拉伸模量增加,拉伸强度降低。对于硅烷处理过的纤维,单独添加或与硅烷一起添加 Joncryl 时,相应复合材料的拉伸模量和强度都有所提高。从流变学和摩尔重量测量结果也可以得出结论,Joncryl 既是聚乳酸的扩链剂,也是偶联剂。
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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