Cetiner Busra, Sahin Dundar Gulayse, Yusufoglu Yusuf, Saner Okan Burcu
Integrated Manufacturing Technologies Research and Application Center & Composite Technologies Center of Excellence, Manufacturing Technologies, Sabanci University, Teknopark Istanbul, Istanbul 34906, Turkey.
Faculty of Engineering and Natural Sciences, Materials Science and Nanoengineering, Sabanci University, Istanbul 34956, Turkey.
Polymers (Basel). 2023 Feb 21;15(5):1085. doi: 10.3390/polym15051085.
Material design in shape memory polymers (SMPs) carries significant importance in attaining high performance and adjusting the interface between additive and host polymer matrix to increase the degree of recovery. Herein, the main challenge is to enhance the interfacial interactions to provide reversibility during deformation. The present work describes a newly designed composite structure by manufacturing a high-degree biobased and thermally induced shape memory polylactic acid (PLA)/thermoplastic polyurethane (TPU) blend incorporated with graphene nanoplatelets obtained from waste tires. In this design, blending with TPU enhances flexibility, and adding GNP provides functionality in terms of mechanical and thermal properties by enhancing circularity and sustainability approaches. The present work provides a scalable compounding approach for industrial applications of GNP at high shear rates during the melt mixing of single/blend polymer matrices. By evaluating the mechanical performance of the PLA and TPU blend composite composition at a 9:1 weight percentage, the optimum GNP amount was defined as 0.5 wt%. The flexural strength of the developed composite structure was enhanced by 24% and the thermal conductivity by 15%. In addition, a 99.8% shape fixity ratio and a 99.58% recovery ratio were attained within 4 min, resulting in the spectacular enhancement of GNP attainment. This study provides an opportunity to understand the acting mechanism of upcycled GNP in improving composite formulations and to develop a new perspective on the sustainability of PLA/TPU blend composites with an increased biobased degree and shape memory behavior.
形状记忆聚合物(SMPs)中的材料设计对于实现高性能以及调整添加剂与主体聚合物基体之间的界面以提高回复程度具有重要意义。在此,主要挑战是增强界面相互作用以在变形过程中提供可逆性。本工作描述了一种新设计的复合结构,通过制造一种高度生物基且热致形状记忆的聚乳酸(PLA)/热塑性聚氨酯(TPU)共混物,并掺入从废旧轮胎中获得的石墨烯纳米片。在这种设计中,与TPU共混可提高柔韧性,添加GNP则通过增强循环性和可持续性方法在机械和热性能方面提供功能。本工作为在单/共混聚合物基体的熔融混合过程中以高剪切速率将GNP用于工业应用提供了一种可扩展的复合方法。通过评估9:1重量百分比的PLA和TPU共混复合组合物的机械性能,确定最佳GNP用量为0.5 wt%。所开发复合结构的弯曲强度提高了24%,热导率提高了15%。此外,在4分钟内实现了99.8%的形状固定率和99.58%的回复率,从而显著提高了GNP的性能。本研究为理解升级循环GNP在改善复合配方中的作用机制以及为具有更高生物基程度和形状记忆行为的PLA/TPU共混复合材料的可持续性开发新视角提供了契机。