Khan Zahid Iqbal, Mohsin Mohammed E Ali, Habib Unsia, Mousa Suleiman, Hossain S K Safdar, Ali Syed Sadiq, Mohamad Zurina, Othman Norhayani
Faculty of Chemical and Energy Engineering, Universiti Teknologi Malaysia (UTM), Johor Bahru 81310, Johor, Malaysia.
Department of Chemical Engineering, College of Engineering, King Faisal University, P.O. Box 400, Al Ahsa 31982, Saudi Arabia.
Polymers (Basel). 2025 May 22;17(11):1433. doi: 10.3390/polym17111433.
The rapid advancement of sustainable materials has driven the need for high-performance polymer nanocomposites with superior mechanical, thermal, and structural properties. In this study, a novel RPET/PA-11/Joncryl nanocomposite reinforced with halloysite nanotubes (HNTs) is developed for the first time, marking a significant breakthrough in polymer engineering. Six different proportions of HNT (0, 1, 2, 3, 4, and 5 phr) are introduced to the blend of rPET/PA-11/Joncryl through a twin-screw extruder and injection moulding machine. The incorporation of HNTs into the RPET/PA-11 matrix, coupled with Joncryl as a compatibilizer, results in a synergistic enhancement of material properties through improved interfacial adhesion, load transfer efficiency, and nanoscale reinforcement. Comprehensive characterization reveals that the optimal formulation with 2 phr HNT (NCS-H2) achieves remarkable improvements in tensile strength (56.14 MPa), flexural strength (68.34 MPa), and Young's modulus (895 MPa), far exceeding conventional polymer blends. Impact resistance reaches 243.46 J/m, demonstrating exceptional energy absorption and fracture toughness. Thermal analysis confirms enhanced stability, with an onset degradation temperature of 370 °C, attributing the improvement to effective matrix-filler interactions and restricted chain mobility. Morphological analysis through FESEM validates uniform HNT dispersion at optimal loading, eliminating agglomeration-induced stress concentrators and reinforcing the polymer network. The pioneering integration of HNT into RPET/PA-11/Joncryl nanocomposites not only bridges a critical gap in sustainable polymers but also establishes a new benchmark for polymer nanocomposites. This work presents an eco-friendly solution for engineering applications, offering mechanical robustness, thermal stability, and recyclability. The results form the basis for next-generation high-performance materials for industrial use in automotive, aerospace, and high-strength structural applications.
可持续材料的迅速发展推动了对具有卓越机械、热和结构性能的高性能聚合物纳米复合材料的需求。在本研究中,首次开发了一种用埃洛石纳米管(HNTs)增强的新型RPET/PA-11/乔纳克林纳米复合材料,这标志着聚合物工程领域的一项重大突破。通过双螺杆挤出机和注塑机将六种不同比例(0、1、2、3、4和5 phr)的HNT引入到rPET/PA-11/乔纳克林共混物中。将HNTs加入到RPET/PA-11基体中,再加上乔纳克林作为增容剂,通过改善界面粘附、载荷传递效率和纳米级增强作用,协同提高了材料性能。综合表征表明,含2 phr HNT的最佳配方(NCS-H2)在拉伸强度(56.14 MPa)、弯曲强度(68.34 MPa)和杨氏模量(895 MPa)方面取得了显著提高,远远超过了传统聚合物共混物。抗冲击性达到243.46 J/m,显示出优异的能量吸收和断裂韧性。热分析证实稳定性增强,起始降解温度为370℃,将这种改善归因于有效的基体-填料相互作用和受限的链运动性。通过场发射扫描电子显微镜(FESEM)进行的形态分析验证了在最佳负载量下HNT的均匀分散,消除了团聚引起的应力集中器并增强了聚合物网络。将HNT首次集成到RPET/PA-11/乔纳克林纳米复合材料中,不仅填补了可持续聚合物领域的关键空白,还为聚合物纳米复合材料建立了新的基准。这项工作为工程应用提供了一种环保解决方案,具有机械强度、热稳定性和可回收性。这些结果为汽车、航空航天和高强度结构应用等工业用途的下一代高性能材料奠定了基础。