College of Materials Science and Engineering, Central South University of Forestry and Technology, Changsha, Hunan 410004, China.
College of Materials Science and Engineering, Central South University of Forestry and Technology, Changsha, Hunan 410004, China; Hunan Province Key Laboratory of Materials Surface & Interface Science and Technology, Central South University of Forestry and Technology, Changsha, Hunan 410004, China.
Int J Biol Macromol. 2024 Oct;278(Pt 1):134549. doi: 10.1016/j.ijbiomac.2024.134549. Epub 2024 Aug 10.
This study has been successfully developed the Sodium alginate/Bamboo fiber /Gelatin(SA/BF/Gel)composite conductive hydrogel with adhesive and self-healing properties. Through in-depth research, the influence of Gel content on the tensile, adhesive, self-healing properties, and conductivity of the SA/BF/Gel composite conductive hydrogel was discussed. The sensing performance and sensing mechanism of the material were also investigated, along with a preliminary exploration of its potential applications. An attempt was made to apply the SA/BF/Gel composite conductive hydrogel to 3D printing technology, establishing a connection between the rheological properties of the hydrogel and its printing structure. The addition of Gel significantly improved the flexibility of the hydrogel, with a conductivity of up to 3.12 S/m at a Gel content of 1.5 %. When employed as a sensor, the material exhibited high sensitivity (GF = 2.21) and excellent cyclic stability, rendering it suitable for a wide range of applications in real-time monitoring of bending movements of fingers and wrists, as well as dynamic contact and variations in contact forces on the hydrogel surface. The SA/BF/Gel composite conductive hydrogel has the potential to be utilized in a multitude of applications, including the development of smart wearable devices, the monitoring of individual human beings, and the integration of human beings and machines. Furthermore, the research findings associated with this hydrogel will provide a strong foundation for the advancement of materials science and the integration of smart technologies.
本研究成功制备了具有黏附性和自修复性能的海藻酸钠/竹纤维/明胶(SA/BF/Gel)复合导电水凝胶。通过深入研究,探讨了 Gel 含量对 SA/BF/Gel 复合导电水凝胶拉伸性能、黏附性能、自修复性能和导电性的影响。还研究了材料的传感性能和传感机制,并对其潜在应用进行了初步探索。尝试将 SA/BF/Gel 复合导电水凝胶应用于 3D 打印技术,建立了水凝胶流变性能与其打印结构之间的联系。Gel 的添加显著提高了水凝胶的柔韧性,在 Gel 含量为 1.5%时,水凝胶的电导率高达 3.12 S/m。将其用作传感器时,材料表现出高灵敏度(GF=2.21)和优异的循环稳定性,适用于实时监测手指和手腕弯曲运动、水凝胶表面动态接触和接触力变化等广泛应用。SA/BF/Gel 复合导电水凝胶具有多种应用的潜力,包括智能可穿戴设备的开发、个体监测以及人机融合。此外,与这种水凝胶相关的研究结果将为材料科学的进步和智能技术的融合提供坚实的基础。