Li Xiaofei, Jiang Miao, Du Yiming, Ding Xin, Xiao Chao, Wang Yanyan, Yang Yanyu, Zhuo Yizhi, Zheng Kang, Liu Xianglan, Chen Lin, Gong Yi, Tian Xingyou, Zhang Xian
Key Laboratory of Photovoltaic and Energy Conservation Materials, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, Hefei 230031, China.
University of Science and Technology of China, Hefei 230026, China.
Mater Horiz. 2023 Jul 31;10(8):2945-2957. doi: 10.1039/d3mh00341h.
Due to their mechanical flexibility, conductive hydrogels have been widely investigated in the fields of flexible electronics and soft robots, but their non-negligible disadvantages, such as poor toughness and limited self-healing, severally restrict their practical application. Herein, gallium indium alloy (EGaIn) is utilized to initiate the polymerization and simultaneously serve as flexible fillers to construct a super-stretchable and self-healing liquid metal/polyvinyl alcohol/(acrylamide--octadecyl methacrylate) (liquid metal/PVA/P(AAm--SMA)) double network hydrogel (LM hydrogel). The synergistic effect of the rigid PVA microcrystal network and the ductile P(AAm--SMA) hydrophobic network, together with the ionic coordination and hydrogen bonds between polymer networks (multiple physical cross-links), endow the LM hydrogel with excellent super-stretchability (2000%), toughness (3.00 MJ m), notch resistance, and self-healing property (healing efficiency > 99% at 25 °C after 24 h). The LM hydrogel exhibits sensitive strain sensing behavior, allowing human-computer interaction to achieve motion recognition and health monitoring. Significantly, owing to the excellent photothermal effect and low infrared emissivity of EGaIn, the LM hydrogel reveals great potential in infrared camouflage. The work of self-healing conductive liquid metal hydrogels will promote the research and practical application of hydrogels and liquid metal in intelligent devices and military fields.
由于其机械柔韧性,导电水凝胶在柔性电子学和软机器人领域得到了广泛研究,但其不可忽视的缺点,如韧性差和自修复能力有限,严重限制了它们的实际应用。在此,利用镓铟合金(EGaIn)引发聚合反应,并同时作为柔性填料来构建一种超拉伸且自修复的液态金属/聚乙烯醇/(丙烯酰胺-甲基丙烯酸十八酯)(液态金属/PVA/P(AAm-SMA))双网络水凝胶(LM水凝胶)。刚性PVA微晶网络和韧性P(AAm-SMA)疏水网络的协同效应,以及聚合物网络之间的离子配位和氢键(多重物理交联),赋予了LM水凝胶优异的超拉伸性(2000%)、韧性(3.00 MJ m)、抗缺口性和自修复性能(在25℃下24小时后愈合效率>99%)。LM水凝胶表现出灵敏的应变传感行为,可实现人机交互以进行运动识别和健康监测。值得注意的是,由于EGaIn具有优异的光热效应和低红外发射率,LM水凝胶在红外伪装方面显示出巨大潜力。自修复导电液态金属水凝胶的这项工作将推动水凝胶和液态金属在智能设备和军事领域的研究及实际应用。