Research Institute of Wood Industry, Chinese Academy of Forestry, No. 2 Dongxiaofu, Haidian District, Beijing 100091, China.
Research Institute of Wood Industry, Chinese Academy of Forestry, No. 2 Dongxiaofu, Haidian District, Beijing 100091, China.
Int J Biol Macromol. 2023 Dec 31;253(Pt 5):127265. doi: 10.1016/j.ijbiomac.2023.127265. Epub 2023 Oct 5.
Incorporation of natural fibers into polylactic acid (PLA) provides a feasible pathway to improve the performance of PLA with a low environmental impact. However, the insufficient interfacial adhesion between fiber and matrix limits the reinforcement efficiency of fiber and final mechanical properties of the biocomposites. Herein we reported an efficient method to simultaneously enhance interfacial interaction, crystallization and mechanical performance of PLA-based biocomposites via combination of wood fiber (WF) and a self-assembly nucleating agent (TMC-300). The interactions between WF and TMC-300 and its influence on PLA, including interfacial crystal morphology, crystallization behavior, and mechanical performance were studied. The results showed that TMC-300 could self-assemble into dendritic-like structure on WF surface driven by hydrogen bonding, inducing the epitaxial crystallization of PLA. This unique interfacial crystallization integrated PLA matrix with WF, resulting in better interfacial adhesion. Under the optimal TMC-300 content (0.5 wt%), the flexural strength and notched impact strength of PLA composites increased by 10 % and 69 % compared with neat PLA, respectively. Additionally, TMC-300 and WF synergistically functioned as effective nucleating agents, which significantly accelerated the crystallization rate and improved the crystallinity of PLA. This work provides a new insight into the enhancement of interfacial bonding in natural fiber/PLA biocomposites.
将天然纤维纳入聚乳酸(PLA)中提供了一种可行的方法,可以在低环境影响的情况下改善 PLA 的性能。然而,纤维与基体之间的界面粘合力不足限制了纤维的增强效率和最终生物复合材料的力学性能。本文报道了一种通过木纤维(WF)和自组装成核剂(TMC-300)结合来同时增强 PLA 基生物复合材料的界面相互作用、结晶和力学性能的有效方法。研究了 WF 和 TMC-300 之间的相互作用及其对 PLA 的影响,包括界面晶体形态、结晶行为和力学性能。结果表明,TMC-300 可以在氢键的驱动下在 WF 表面自组装成树枝状结构,诱导 PLA 的外延结晶。这种独特的界面结晶将 PLA 基体与 WF 集成在一起,从而获得更好的界面附着力。在最佳 TMC-300 含量(0.5wt%)下,与纯 PLA 相比,PLA 复合材料的弯曲强度和缺口冲击强度分别提高了 10%和 69%。此外,TMC-300 和 WF 协同作用作为有效的成核剂,显著提高了 PLA 的结晶速率和结晶度。这项工作为增强天然纤维/PLA 生物复合材料中的界面键合提供了新的见解。