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聚环氧乙烷增强聚乳酸的延展性和韧性:中间相的作用。

Polyethylene oxide enhances the ductility and toughness of polylactic acid: the role of mesophase.

作者信息

Wang Zhen, Zhang Chuang, Zhang Zhen, Chen Xin, Wang Xiaohui, Wen Mingjie, Chen Bin, Cao Wei, Liu Chuntai

机构信息

National Engineering Research Center for Advanced Polymer Processing Technology, Key Laboratory of Materials Processing and Mold (Zhengzhou University), Ministry of Education, Zhengzhou University, Zhengzhou, 450002, China.

出版信息

Soft Matter. 2020 Aug 14;16(30):7018-7032. doi: 10.1039/d0sm00671h. Epub 2020 Jul 10.

Abstract

A lack of understanding of the structure-property relationship of the polylactic acid (PLA)-based polymer composite system makes it a challenge to manufacture products with optimized mechanical performance by precisely regulating the microscopic structure and morphology. Herein, we chose the PLA/polyethylene oxide (PEO) blend as a model to investigate the structural reason for the enhanced ductility and toughness of this kind of material. We have demonstrated that a considerable amount of the PLA mesophases exist in the melt quenched films that display high ductility and toughness, in contrast to the PLA crystals in their counterparts of slowly cooled films that are dominated by brittle fracture. The mesophase formed by melt quenching is attributed to a moderate acceleration of PLA chain mobility due to the plasticizing effect of the flexible PEO. In situ experiments have revealed the further formation of oriented mesophases induced by tensile deformation, which presents a high consistency between the content increase and the tensile stress intensification. We illustrate that the mesophases directly develop into a microfibrillar morphology to transmit the external stress and prevent crack propagation under deformation. This work emphasizes the essential role of the PLA mesophase in acquiring the enhanced ductility and toughness of the PLA/PEO composite films, which may be generalized to other similar PLA-based polymer composite materials.

摘要

对聚乳酸(PLA)基聚合物复合体系的结构-性能关系缺乏了解,使得通过精确调控微观结构和形态来制造具有优化机械性能的产品成为一项挑战。在此,我们选择PLA/聚环氧乙烷(PEO)共混物作为模型,以研究这类材料韧性和延展性增强的结构原因。我们已经证明,与缓慢冷却薄膜中以脆性断裂为主的PLA晶体相比,在具有高延展性和韧性的熔体淬火薄膜中存在大量的PLA中间相。熔体淬火形成的中间相归因于柔性PEO的增塑作用使PLA链迁移率适度加快。原位实验揭示了拉伸变形诱导形成取向中间相,其含量增加与拉伸应力增强高度一致。我们阐明,中间相直接发展成微纤形态以传递外部应力并防止变形过程中的裂纹扩展。这项工作强调了PLA中间相在提高PLA/PEO复合薄膜的延展性和韧性方面的重要作用,这可能推广到其他类似的PLA基聚合物复合材料。

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