Cortés Alejandro, Sánchez-Romate Xoan F, Martinez-Diaz David, Prolongo Silvia G, Jiménez-Suárez Alberto
Materials Science and Engineering Area, University Rey Juan Carlos, C/Tulipán s/n, 28933 Madrid, Spain.
Institute of Technologies for Sustainability, University Rey Juan Carlos, C/Tulipán s/n, 28933 Madrid, Spain.
Polymers (Basel). 2024 Jan 31;16(3):388. doi: 10.3390/polym16030388.
The present study focuses on the multifunctional capabilities of carbon nanotube (CNT)-reinforced vitrimers. More specifically, the thermomechanical properties, the Joule effect heating capabilities, the electrical conductivity, the shape memory, and the chemical recycling capacity are explored as a function of the CNT content and the NH/epoxy ratio. It is observed that the electrical conductivity increases with the CNT content due to a higher number of electrical pathways, while the effect of the NH/epoxy ratio is not as prevalent. Moreover, the T of the material decreases when increasing the NH/epoxy ratio due to the lower cross-link density, whereas the effect of the CNTs is more complex, in some cases promoting a steric hindrance. The results of Joule heating tests prove the suitability of the proposed materials for resistive heating, reaching average temperatures above 200 °C when applying 100 V for the most electrically conductive samples. Shape memory behavior shows an outstanding shape fixity ratio in every case (around 100%) and a higher shape recovery ratio (95% for the best-tested condition) when decreasing the NH/epoxy ratio and increasing the CNT content, as both hinder the rearrangement of the dynamic bonds. Finally, the results of the recyclability tests show the ability to regain the nanoreinforcement for their further use. Therefore, from a multifunctional analysis, it can be stated that the proposed materials present promising properties for a wide range of applications, such as Anti-icing and De-icing Systems (ADIS), Joule heating devices for comfort or thermotherapy, or self-deployable structures, among others.
本研究聚焦于碳纳米管(CNT)增强的玻璃态 Vitrimer 的多功能性能。更具体地说,研究了热机械性能、焦耳效应加热能力、电导率、形状记忆以及化学回收能力与 CNT 含量和 NH/环氧树脂比例之间的关系。研究发现,由于导电通路数量增加,电导率随 CNT 含量的增加而提高,而 NH/环氧树脂比例的影响则不那么显著。此外,由于交联密度降低,当增加 NH/环氧树脂比例时,材料的玻璃化转变温度(Tg)会降低,而 CNT 的影响更为复杂,在某些情况下会产生空间位阻。焦耳加热测试结果证明了所提出材料适用于电阻加热,对于导电性最强的样品,施加 100 V 电压时平均温度可超过 200°C。形状记忆行为在每种情况下都表现出出色的形状固定率(约 100%),并且当降低 NH/环氧树脂比例并增加 CNT 含量时,形状恢复率更高(在最佳测试条件下为 95%),因为这两者都会阻碍动态键的重排。最后,可回收性测试结果表明能够重新获得纳米增强材料以供进一步使用。因此,从多功能分析来看,可以说所提出的材料在广泛的应用中具有良好的性能,例如防冰和除冰系统(ADIS)、用于舒适或热疗的焦耳加热装置,或自展开结构等。