Institute of Burn Research; State Key Lab of Trauma Burns and Combined Injury, Southwest Hospital, Third Millitary Medical University, Chongqing, 400038, China.
Department of Mechanical Engineering, University of Manitoba, Winnipeg, R3T 5V6, Canada.
Adv Mater. 2017 Aug;29(31). doi: 10.1002/adma.201700533. Epub 2017 Jun 22.
The advent of conductive self-healing (CSH) hydrogels, a class of novel materials mimicking human skin, may change the trajectory of the industrial process because of their potential applications in soft robots, biomimetic prostheses, and health-monitoring systems. Here, the development of a mechanically and electrically self-healing hydrogel based on physically and chemically cross-linked networks is reported. The autonomous intrinsic self-healing of the hydrogel is attained through dynamic ionic interactions between carboxylic groups of poly(acrylic acid) and ferric ions. A covalent cross-linking is used to support the mechanical structure of the hydrogel. Establishing a fair balance between the chemical and physical cross-linking networks together with the conductive nanostructure of polypyrrole networks leads to a double network hydrogel with bulk conductivity, mechanical and electrical self-healing properties (100% mechanical recovery in 2 min), ultrastretchability (1500%), and pressure sensitivity. The practical potential of CSH hydrogels is further revealed by their application in human motion detection and their 3D-printing performance.
导电自修复(CSH)水凝胶的出现,可能会改变工业进程的轨迹,因为它们在软机器人、仿生假肢和健康监测系统中有潜在的应用。在这里,报道了一种基于物理和化学交联网络的机械和电自修复水凝胶的开发。通过聚丙烯酸的羧酸基团和铁离子之间的动态离子相互作用,实现了水凝胶的自主内在自修复。共价交联用于支撑水凝胶的机械结构。在化学和物理交联网络之间以及聚吡咯网络的导电纳米结构之间建立公平的平衡,导致具有整体导电性、机械和电自修复性能(在 2 分钟内实现 100%机械恢复)、超拉伸性(1500%)和压力敏感性的双网络水凝胶。CSH 水凝胶在人体运动检测及其 3D 打印性能方面的实际应用进一步揭示了其潜在应用。