Anstey Andrew, Tuccitto Anthony V, Lee Patrick C, Park Chul B
Microcellular Plastics Manufacturing Laboratory (MPML), Department of Mechanical and Industrial Engineering, University of Toronto, 5 King's College Road, Toronto M5S 3G8, Canada.
Multifunctional Composites Manufacturing Laboratory (MCML), Department of Mechanical and Industrial Engineering, University of Toronto, 5 King's College Road, Toronto M5S 3G8, Canada.
ACS Appl Mater Interfaces. 2022 Mar 30;14(12):14422-14434. doi: 10.1021/acsami.1c13836. Epub 2022 Mar 18.
Polylactide (PLA) resins are among the most desirable biopolymers due to their biobased and compostable nature, excellent stiffness, and tensile strength. However, the widespread application of PLA has long been hindered by its inherent brittleness. While multiple routes have been successfully developed for the toughening of PLA, this toughening has always come at the cost of compromising the stiffness and strength of the matrix. In this work, we report a robust and scalable method for the development of PLA nanocomposites with an unprecedented combination of stiffness and toughness. Using the nanofibrillation technique, we generated PLA composites containing nanofibrils of thermoplastic polyester elastomer (TPEE). Due to the high aspect ratio of these nanofibrils, they form physically percolated networks at low weight fractions (∼2.8 wt %) which dramatically change the mechanical behavior of the material. We found that, upon network formation, the material transitions from brittle to ductile behavior, dramatically increasing its toughness with only a marginal decrease in Young's modulus. We investigate the peculiar rheological behavior and crystallization kinetics of these blends, and propose an extension of the critical ligament thickness mechanism, wherein intrinsic toughening arises at the fiber-matrix interface in the presence of entangled elastomer networks.
聚乳酸(PLA)树脂因其生物基和可堆肥的特性、出色的刚度和拉伸强度,成为最理想的生物聚合物之一。然而,PLA固有的脆性长期以来一直阻碍着它的广泛应用。虽然已经成功开发出多种增韧PLA的方法,但这种增韧总是以牺牲基体的刚度和强度为代价。在这项工作中,我们报告了一种稳健且可扩展的方法,用于开发具有前所未有的刚度和韧性组合的PLA纳米复合材料。利用纳米纤维化技术,我们制备了含有热塑性聚酯弹性体(TPEE)纳米纤维的PLA复合材料。由于这些纳米纤维的高长径比,它们在低重量分数(约2.8 wt%)下形成物理渗透网络,从而显著改变材料的力学行为。我们发现,在网络形成后,材料从脆性转变为韧性行为,在杨氏模量仅略有下降的情况下显著提高了其韧性。我们研究了这些共混物独特的流变行为和结晶动力学,并提出了临界韧带厚度机制的扩展,即在存在缠结弹性体网络的情况下,本征增韧发生在纤维 - 基体界面处。