State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, P. R. China.
School of Chemistry, Chemical Engineering and Life Sciences, Wuhan University of Technology, Wuhan 430070, P. R. China.
ACS Appl Mater Interfaces. 2021 Jan 20;13(2):2952-2960. doi: 10.1021/acsami.0c19512. Epub 2021 Jan 7.
Bioinspired hydrogels have promising prospects in applications such as wearable devices, human health monitoring equipment, and soft robots due to their multifunctional sensing properties resembling natural skin. However, the preparation of intelligent hydrogels that provide feedback on multiple electronic signals simultaneously, such as human skin receptors, when stimulated by external contact pressure remains a substantial challenge. In this study, we designed a bioinspired hydrogel with multiple conductive capabilities by incorporating carbon nanotubes into a chelate of calcium ions with polyacrylic acid and sodium alginate. The bioinspired hydrogel consolidates self-healing ability, stretchability, 3D printability, and multiple conductivities. It can be fabricated as an integrated strain sensor with simultaneous piezoresistive and piezocapacitive performances, exhibiting sensitive (gauge factor of 6.29 in resistance mode and 1.25 kPa in capacitance mode) responses to subtle pressure changes in the human body, such as finger flexion, knee flexion, and respiration. Furthermore, the bioinspired strain sensor sensitively and discriminatively recognizes the signatures written on it. Hence, we expect our ideas to provide inspiration for studies exploring the use of advanced hydrogels in multifunctional skin-like smart wearable devices.
仿生水凝胶因其多功能传感性能类似于天然皮肤,在可穿戴设备、人体健康监测设备和软体机器人等领域具有广阔的应用前景。然而,制备能够对外部接触压力刺激做出反馈的智能水凝胶仍然是一个巨大的挑战,这种水凝胶需要同时提供多种电子信号反馈,就像人体皮肤感受器一样。在本研究中,我们通过将碳纳米管纳入钙离子与聚丙烯酸和海藻酸钠的螯合物中,设计了一种具有多种导电能力的仿生水凝胶。这种仿生水凝胶具有自修复能力、拉伸性、3D 可打印性和多种导电性。它可以被制造为一种集成应变传感器,具有同时的压阻和电容性能,对人体的细微压力变化(如手指弯曲、膝盖弯曲和呼吸)表现出敏感的(电阻模式下的应变系数为 6.29,电容模式下为 1.25 kPa)响应。此外,仿生应变传感器能够灵敏且有区别地识别在其表面书写的标记。因此,我们希望我们的想法能够为探索使用先进的水凝胶在多功能类似皮肤的智能可穿戴设备中的应用提供灵感。