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通过控制 PLLA 基体结晶来调整聚(L-丙交酯)/聚(ε-己内酯)(PLLA/PCL)共混物的冲击韧性。

Tailoring impact toughness of poly(L-lactide)/poly(ε-caprolactone) (PLLA/PCL) blends by controlling crystallization of PLLA matrix.

机构信息

College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, PR China.

出版信息

ACS Appl Mater Interfaces. 2012 Feb;4(2):897-905. doi: 10.1021/am201564f. Epub 2012 Jan 20.

Abstract

Melt blending poly(L-lactide) (PLLA) with various biodegradable polymers has been thought to be the most economic and effective route to toughen PLLA without compromising its biodegradability. Unfortunately, only very limited improvement in notched impact toughness can be achieved, although most of these blends show significant enhancement in tensile toughness. In this work, biodegradable poly(ε-caprolactone) (PCL) was used as an impact modifier to toughen PLLA and a nucleating agent was utilized to tailor the crystallization of PLLA matrix. Depending on the nucleating agent concentrations in the matrix and mold temperatures in injection molding, PLLA/PCL blends with a wide range of matrix crystallinity (10-50%) were prepared by practical injection molding. The results show that there is a linear relationship between PLLA matrix crystallinity and impact toughness. With the increase in PLLA crystalline content, toughening becomes much easier to achieve. PLLA crystals are believed to provide a path for the propagation of shear yielding needed for effective impact energy absorption, and then, excellent toughening effect can be obtained when these crystals percolate through the whole matrix. This investigation provides not only a new route to prepare sustainable PLLA products with good impact toughness but also a fresh insight into the importance of matrix crystallization in the toughening of semicrystalline polymers with a flexible polymer.

摘要

熔融共混聚 L-乳酸(PLLA)与各种可生物降解聚合物被认为是在不牺牲其生物降解性的情况下增韧 PLLA 的最经济有效的方法。不幸的是,尽管大多数这些共混物在拉伸韧性方面有显著提高,但在缺口冲击韧性方面只能得到非常有限的改善。在这项工作中,生物可降解的聚己内酯(PCL)被用作增韧 PLLA 的冲击改性剂,并利用成核剂来调整 PLLA 基体的结晶。根据基体中的成核剂浓度和注塑成型中的模具温度,通过实际的注塑成型制备了具有广泛基体结晶度(10-50%)的 PLLA/PCL 共混物。结果表明,PLLA 基体结晶度与冲击韧性之间存在线性关系。随着 PLLA 结晶含量的增加,增韧变得更容易实现。PLLA 晶体被认为为有效吸收冲击能所需的剪切屈服的传播提供了一条途径,因此,当这些晶体在整个基体中渗透时,就可以获得优异的增韧效果。这项研究不仅为制备具有良好冲击韧性的可持续性 PLLA 产品提供了新途径,而且还为在具有柔性聚合物的半结晶聚合物的增韧中基体结晶的重要性提供了新的见解。

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