Safaei Ali, Brancart Joost, Wang Zhanwei, Yazdani Sogol, Vanderborght Bram, Van Assche Guy, Terryn Seppe
Physical Chemistry and Polymer Science, Department of Materials and Chemistry, Vrije Universiteit Brussel, Pleinlaan 2, B-1050 Brussels, Belgium.
Brubotics, Vrije Universiteit Brussel and Imec, Pleinlaan 2, B-1050 Brussels, Belgium.
Polymers (Basel). 2023 Aug 24;15(17):3527. doi: 10.3390/polym15173527.
Despite being primarily categorized as non-autonomous self-healing polymers, we demonstrate the ability of Diels-Alder polymers to heal macroscopic damages at room temperature, resulting in complete restoration of their mechanical properties within a few hours. Moreover, we observe immediate partial recovery, occurring mere minutes after reuniting the fractured surfaces. This fast room-temperature healing is accomplished by employing an off-stoichiometric maleimide-to-furan ratio in the polymer network. Through an extensive investigation of seven Diels-Alder polymers, the influence of crosslink density on self-healing, thermal, and (thermo-)mechanical performance was thoroughly examined. Crosslink density variations were achieved by adjusting the molecular weight of the monomers or utilizing the off-stoichiometric maleimide-to-furan ratio. Quasistatic tensile testing, dynamic mechanical analysis, dynamic rheometry, differential scanning calorimetry, and thermogravimetric analysis were employed to evaluate the individual effects of these parameters on material performance. While lowering the crosslink density in the polymer network via decreasing the off-stoichiometric ratio demonstrated the greatest acceleration of healing, it also led to a slight decrease in (dynamic) mechanical performance. On the other hand, reducing crosslink density using longer monomers resulted in faster healing, albeit to a lesser extent, while maintaining the (dynamic) mechanical performance.
尽管主要被归类为非自主自愈合聚合物,但我们证明了狄尔斯-阿尔德聚合物在室温下能够修复宏观损伤,从而在几小时内完全恢复其机械性能。此外,我们观察到在断裂表面重新结合后仅几分钟就会立即出现部分恢复。这种快速的室温愈合是通过在聚合物网络中采用非化学计量的马来酰亚胺与呋喃比例来实现的。通过对七种狄尔斯-阿尔德聚合物的广泛研究,深入考察了交联密度对自愈合、热性能和(热)机械性能的影响。通过调节单体的分子量或利用非化学计量的马来酰亚胺与呋喃比例来实现交联密度的变化。采用准静态拉伸试验、动态力学分析、动态流变学、差示扫描量热法和热重分析来评估这些参数对材料性能的各自影响。虽然通过降低非化学计量比来降低聚合物网络中的交联密度显示出愈合的最大加速,但这也导致(动态)机械性能略有下降。另一方面,使用较长的单体降低交联密度导致愈合速度更快,尽管程度较小,同时保持了(动态)机械性能。