State Key Laboratory of Biobased Materials and Green Papermaking, Qilu University of Technology, Shandong Academy of Science, Jinan 250353, China.
State Key Laboratory of Biobased Materials and Green Papermaking, Qilu University of Technology, Shandong Academy of Science, Jinan 250353, China.
Int J Biol Macromol. 2024 Mar;260(Pt 1):129272. doi: 10.1016/j.ijbiomac.2024.129272. Epub 2024 Jan 9.
Conductive hydrogels, especially polysaccharide-based ionic conductive hydrogels, have received increasing interest in the field of wearable sensors due to their similarity to human skin. Nevertheless, it is still a challenging task to simultaneously prepare a self-healed and adhesive conductive hydrogel with good toughness, temperature tolerance and high sensing performance, especially with high sensitivity and a low detection limit. Herein, we developed a new strategy to improve the toughness and sensing performance of a multifunctional conductive hydrogel by simultaneously using dissolved chitosan (CS) and solid chitosan nanofibers (CSFs) to induce the formation of hierarchical polymeric networks in the hydrogel. The tensile strength and elongation at break of the hydrogel could be improved from 70.3 kPa and 1005 % to 173.9 kPa and 1477 %, respectively, simply by introducing CSFs to the hydrogel, and its self-healing, adhesive and antibacterial properties were effectively retained. When serving as a resistive sensing material, the introduction of CSFs increased the gauge factor of the hydrogel-based strain sensor from 8.25 to 14.27. Moreover, the hydrogel-based strain sensor showed an ultralow detection limit of 0.2 %, excellent durability and stability (1000 cycles) and could be used to detect various human activities. In addition, the hydrogel prepared by using a water-glycerol binary solvent system showed temperature-tolerant performance and possessed adequate sensitivity when serving as a resistive sensing material. Therefore, this work provides a new way to prepare multifunctional conductive hydrogels with good toughness, sensing performance and temperature tolerance to expand the application range of hydrogel-based strain sensors.
导电水凝胶,尤其是基于多糖的离子导电水凝胶,由于其与人体皮肤相似,在可穿戴传感器领域受到越来越多的关注。然而,同时制备具有良好韧性、耐温性和高传感性能的自修复和粘性导电水凝胶仍然是一项具有挑战性的任务,尤其是具有高灵敏度和低检测限。在此,我们开发了一种新策略,通过同时使用溶解的壳聚糖 (CS) 和固体壳聚糖纳米纤维 (CSFs) 在水凝胶中诱导形成分级聚合物网络,来提高多功能导电水凝胶的韧性和传感性能。通过向水凝胶中引入 CSFs,水凝胶的拉伸强度和断裂伸长率分别从 70.3 kPa 和 1005%提高到 173.9 kPa 和 1477%,同时有效地保留了其自修复、粘性和抗菌性能。当用作电阻式传感材料时,CSFs 的引入将水凝胶基应变传感器的应变系数从 8.25 提高到 14.27。此外,水凝胶基应变传感器具有超低检测限 0.2%、优异的耐用性和稳定性(1000 次循环),可用于检测各种人体活动。此外,使用水-甘油二元溶剂系统制备的水凝胶具有耐温性能,作为电阻式传感材料时具有足够的灵敏度。因此,这项工作为制备具有良好韧性、传感性能和耐温性的多功能导电水凝胶提供了一种新方法,以扩展水凝胶基应变传感器的应用范围。