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多壁碳纳米管对聚酰胺66纳米复合材料材料性能的影响。

The Effect of Multi-Walled Carbon Nanotubes on the Material Properties of Polyamide 66 Nanocomposites.

作者信息

Sandu Ionut-Laurentiu, Stan Felicia, Fetecau Catalin, Turcanu Adriana-Madalina, Cantaragiu Ceoromila Alina, Prada Andrei-Mihai, Blaga Florin-Sandu

机构信息

Center of Excellence Polymer Processing, Dunarea de Jos University of Galati, 47 Domneasca, 800 008 Galati, Romania.

Cross-Border Faculty, Dunarea de Jos University of Galati, 47 Domneasca, 800 008 Galati, Romania.

出版信息

Polymers (Basel). 2025 May 12;17(10):1319. doi: 10.3390/polym17101319.

Abstract

The aim of this study was to evaluate the effect of multi-walled carbon nanotubes (CNTs) on various material properties of the polyamide 66 (PA66) nanocomposites. This is achieved first by investigating the effect of CNTs (0.1-5 wt.%) on the material properties of PA66 pellets, and second, on the injection-molded PA66/CNT nanocomposites. Thermal analysis revealed that CNTs do not have a significant effect on the melting behavior and melting temperature of PA66/CNT nanocomposites, but they increase the crystallization temperature of the nanocomposites. Rheological analysis showed that the melt shear viscosity of the PA66 increased with increasing CNT content particularly above 1 wt.%. Additionally, the PA66 nanocomposites exhibit shear-thinning behavior, and this effect is more significant at higher CNT contents. The FT-IR analysis revealed the absence of chemical bonds between PA66 and CNTs and, consequently, the uniform dispersion of CNTs in the PA66 matrix. Mechanical testing indicated that the inclusion of CNTs (0.1 to 5 wt.%) in PA66 matrix could not improve the tensile modulus to a great extent, while it decreased the ultimate tensile strength of PA66 nanocomposites under tension. On the other hand, CNTs positively influenced the mechanical behavior under bending (+15% increase at 5 wt.%). Among the nanocomposites, PA66 filled with 5 wt.% CNTs exhibited the optimal mechanical performance in terms of tensile strength (58 MPa), tensile modulus (2689 MPa), bending modulus (2072 MPa), and bending strength (104 MPa). The experimental results also showcase the significant improvement in the tensile and bending mechanical properties of the injection-molded PA66 nanocomposites after thermal annealing at -40 °C and 180 °C for one hour. This experimental study provides guidelines for the structure-property-processability of the PA66 nanocomposites, revealing the complex relationship between the CNTs and the enhancement of mechanical properties, while highlighting the potential of thermal annealing in improving the mechanical performance of PA66 nanocomposites. This will be further investigated to promote the use of PA66 nanocomposite in industrial applications.

摘要

本研究的目的是评估多壁碳纳米管(CNT)对聚酰胺66(PA66)纳米复合材料各种材料性能的影响。这首先通过研究CNT(0.1 - 5 wt.%)对PA66颗粒材料性能的影响来实现,其次是研究其对注塑成型的PA66/CNT纳米复合材料的影响。热分析表明,CNT对PA66/CNT纳米复合材料的熔融行为和熔融温度没有显著影响,但会提高纳米复合材料的结晶温度。流变学分析表明,PA66的熔体剪切粘度随着CNT含量的增加而增加,特别是在含量高于1 wt.%时。此外,PA66纳米复合材料表现出剪切变稀行为,且在较高CNT含量下这种效应更显著。傅里叶变换红外光谱(FT - IR)分析表明PA66和CNT之间不存在化学键,因此CNT在PA66基体中均匀分散。力学测试表明,在PA66基体中加入CNT(0.1至5 wt.%)在很大程度上不能提高拉伸模量,同时会降低PA66纳米复合材料在拉伸时的极限拉伸强度。另一方面,CNT对弯曲力学行为有积极影响(5 wt.%时增加15%)。在纳米复合材料中,填充5 wt.% CNT的PA66在拉伸强度(58 MPa)、拉伸模量(2689 MPa)、弯曲模量(2072 MPa)和弯曲强度(104 MPa)方面表现出最佳力学性能。实验结果还展示了注塑成型的PA66纳米复合材料在 - 40°C和180°C下热退火一小时后,其拉伸和弯曲力学性能有显著改善。这项实验研究为PA66纳米复合材料的结构 - 性能 - 加工性能提供了指导,揭示了CNT与力学性能增强之间的复杂关系,同时突出了热退火在改善PA66纳米复合材料力学性能方面的潜力。这将进一步研究以促进PA66纳米复合材料在工业应用中的使用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4818/12115250/eab02d6438fe/polymers-17-01319-g001.jpg

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