Ni Yezhou, Chen Jingyu, Chen Kunlin
Key Laboratory of Eco-Textile, Ministry of Education, College of Textile Science and Engineering, Jiangnan University, Wuxi 214122, China.
Key Laboratory of Eco-Textile, Ministry of Education, College of Textile Science and Engineering, Jiangnan University, Wuxi 214122, China.
Carbohydr Polym. 2024 Jul 1;335:122042. doi: 10.1016/j.carbpol.2024.122042. Epub 2024 Mar 13.
Manufacturing flexible sensors with prominent mechanical properties, multifunctional sensing abilities, and remarkable self-healing capabilities remains a difficult task. In this study, a novel vanillin-modified polyacrylate (VPA), which is capable of forming green dynamic covalent crosslinking with chitosan (CS), was synthesized. The synthesized VPA was combined with mesoporous silica-modified MXene (AMS-MXene) and covalently cross-linked simultaneously with CS, resulting in the formation of a flexible composite conductive film designed for dual-mode sensors. Due to the multidimensional structure formed by the mesoporous silica and MXene layers, the resulting composite film is not only suitable for strain sensing but also excels in gas response sensing. Most importantly, the composite films demonstrate a remarkable self-healing capability through reversible dynamic covalent bonds, specifically Schiff base bonds, coupled with multiple hydrogen bonding interactions with AMS-MXene. This robust self-repair functionality remains effective even at a low temperature of 30 °C. Additionally, the synergistic antibacterial effect exerted by vanillin and CS in the film can endow the composite sensor with excellent antimicrobial properties. This multifunctional composite film holds tremendous potential for applications in green flexible wearable sensors. Furthermore, it can show diverse applications in a wide variety of fields, driving advances in wearable technology and human health monitoring.
制造具有卓越机械性能、多功能传感能力和显著自愈能力的柔性传感器仍然是一项艰巨的任务。在本研究中,合成了一种新型香草醛改性聚丙烯酸酯(VPA),它能够与壳聚糖(CS)形成绿色动态共价交联。将合成的VPA与介孔二氧化硅改性的MXene(AMS-MXene)结合,并同时与CS共价交联,从而形成了一种用于双模传感器的柔性复合导电膜。由于介孔二氧化硅和MXene层形成的多维结构,所得复合膜不仅适用于应变传感,而且在气体响应传感方面表现出色。最重要的是,复合膜通过可逆的动态共价键,特别是席夫碱键,以及与AMS-MXene的多重氢键相互作用,表现出显著的自愈能力。这种强大的自我修复功能即使在30℃的低温下也仍然有效。此外,膜中香草醛和CS发挥的协同抗菌作用可赋予复合传感器优异的抗菌性能。这种多功能复合膜在绿色柔性可穿戴传感器应用方面具有巨大潜力。此外,它还可以在广泛的领域展示出多样化的应用,推动可穿戴技术和人类健康监测的进步。