DOI: 10.1021/acs.iecr.6c03874 ISSN: 0888-5885

Simultaneous Compatibilization and Toughening of Renewable PLA/PA11 Blend via Core-Shell Biobased Nanosilica-Filled Elastomer

Zhenfeng Wang, Zihe Zhao, Yu Cheng, Lu Han, Youxu Chen, Lianghai Zhu, Fei Mo, Jingyuan Wang, Kunyu Zhang, Li Pan

Abstract

Poly(lactic acid) (PLA) composites are attractive candidates for sustainable applications. However, achieving an optimal balance between toughness and heat resistance without sacrificing biobased content remains a persistent challenge. Herein, we develop PLA composites exhibiting concurrently high stiffness, toughness, and heat resistance by incorporating renewable polyamide11 (PA11) and a biobased amino-functionalized nanosilica/epoxy elastomer hybrid (Ex). The influence of filler loading on mechanical performance, rheological behavior, and phase morphology of the PLA/PA11 blends is systematically investigated. The optimized formulation, 55-5E10 (comprising 5 wt % modified elastomer E10 with 10 wt % SiO2), achieves a tensile strength of 61.7 MPa, a notched impact strength of 49.8 kJ/m2, and an elongation at break of 399%. These marked enhancements are attributed to the formation of a co-continuous phase architecture, improved interfacial compatibility, and the preferential localization of EMG and EMG@SiO2 particles within the PA11 domains, featuring a multi-core architecture. This work offers a novel pathway for engineering mechanically robust PLA/PA11 composites, broadening their potential as fossil-free alternatives for load-bearing applications.