Xue Bin, Sheng Hui, Li Yongqiang, Li Lan, Di Weishuai, Xu Zhengyu, Ma Linjie, Wang Xin, Jiang Haoting, Qin Meng, Yan Zhibo, Jiang Qing, Liu Jun-Ming, Wang Wei, Cao Yi
National Laboratory of Solid State Microstructures, Department of Physics, Nanjing University, Nanjing 210093, China.
State Key Laboratory of Pharmaceutical Biotechnology, Department of Sports Medicine and Adult Reconstructive Surgery, Drum Tower Hospital Affiliated to Medical School of Nanjing University, Nanjing 210008, China.
Natl Sci Rev. 2021 Aug 14;9(7):nwab147. doi: 10.1093/nsr/nwab147. eCollection 2022 Jul.
Hydrogels have emerged as promising materials for the construction of skin-like mechanical sensors. The common design of hydrogel-based artificial skin requires a dielectric sandwiched between two hydrogel layers for capacitive sensing. However, such a planar configuration limits the sensitivity, stretchability and self-healing properties. Here, we report the design of single-layer composite hydrogels with bulk capacitive junctions as mechanical sensors. We engineer dielectric peptide-coated graphene (PCG) to serve as homogenously dispersed electric double layers in hydrogels. Any mechanical motions that alter the microscopic distributions of PCG in the hydrogels can significantly change the overall capacitance. We use peptide self-assembly to render strong yet dynamic interfacial interactions between the hydrogel network and graphene. The resulting hydrogels can be stretched up to 77 times their original length and self-heal in a few minutes. The devices can effectively sense strain and pressure in both air and aqueous environments, providing tremendous opportunities for next-generation iontronics.
水凝胶已成为构建类皮肤机械传感器的有前景的材料。基于水凝胶的人造皮肤的常见设计需要在两个水凝胶层之间夹有一个电介质用于电容传感。然而,这种平面结构限制了灵敏度、拉伸性和自愈合性能。在此,我们报告了具有体电容结的单层复合水凝胶作为机械传感器的设计。我们设计了介电肽涂层石墨烯(PCG),使其在水凝胶中作为均匀分散的双电层。任何改变水凝胶中PCG微观分布的机械运动都会显著改变整体电容。我们利用肽自组装在水凝胶网络和石墨烯之间产生强大而动态的界面相互作用。由此产生的水凝胶可以拉伸至其原始长度的77倍,并在几分钟内自愈合。这些器件能够在空气和水环境中有效感知应变和压力,为下一代离子电子学提供了巨大机遇。