MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Institute of Biomedical Macromolecules, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou 310027, China.
MOE Key Laboratory of Macromolecule Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou 310027, China.
Carbohydr Polym. 2021 Feb 15;254:117316. doi: 10.1016/j.carbpol.2020.117316. Epub 2020 Oct 27.
For conductive hydrogels applied in biosensors, wearable devices and so forth, multifunctionality is an inevitable trend of development to meet various practical requirements and enhance human experience. Herein, inspired by nanocomposite, double-network (DN) and mussel chemistry, a new Graphene oxide@Dopamine/Alginate/Poly(acrylic acid-co-acrylamide) [GO@DA/Alginate/P(AAc-co-AAm)] hydrogel was fabricated through one-pot in-situ radical copolymerization. GO@DA nanofillers, prepared via GO confined DA polymerization, imparted the hydrogel with remarkable adhesiveness. Alginate/P(AAc-co-AAm) DN matrix, physically and chemically crosslinked by Fe and N,N'-Methylenebisacrylamide, made hydrogels ultrastretchable, self-healing and biocompatible. With contents of DA and alginate accurately regulated, the tensile strength, elongation, adhesion strength and conductivity of the optimal hydrogel could reach 320.2 kPa, 1198 %, 36.9 kPa and 3.24 ± 0.12 S/m, respectively. What's more notable was that the synergistic integration of repeatable adhesiveness, strain sensitivity, use stability, self-healing ability and biocompatibility provided such hydrogels with tremendous possibility of practical application for strain sensors.
对于应用于生物传感器、可穿戴设备等的导电水凝胶,多功能性是满足各种实际要求和增强人类体验的必然发展趋势。受纳米复合材料、双网络(DN)和贻贝化学的启发,通过一锅原位自由基共聚制备了一种新型氧化石墨烯@多巴胺/海藻酸钠/聚(丙烯酸-co-丙烯酰胺)[GO@DA/海藻酸钠/P(AAc-co-AAm)]水凝胶。GO@DA 纳米填料通过 GO 限制的 DA 聚合制备,赋予水凝胶显著的粘附性。海藻酸钠/P(AAc-co-AAm)DN 基质通过 Fe 和 N,N'-亚甲基双丙烯酰胺物理和化学交联,使水凝胶具有超拉伸性、自修复性和生物相容性。通过精确调节 DA 和海藻酸钠的含量,最佳水凝胶的拉伸强度、伸长率、粘附强度和电导率分别可达 320.2 kPa、1198%、36.9 kPa 和 3.24±0.12 S/m。更值得注意的是,可重复粘附性、应变敏感性、使用稳定性、自修复能力和生物相容性的协同集成,为这种水凝胶在应变传感器的实际应用中提供了巨大的可能性。