School of Aeronautics, Northwestern Polytechnical University, Xi'an, Shaanxi 710072, China; Aircraft Strength Research Institute, Aviation Industries of China, Xi'an, 710072, China.
School of Aeronautics, Northwestern Polytechnical University, Xi'an, Shaanxi 710072, China.
J Colloid Interface Sci. 2022 Nov;625:817-830. doi: 10.1016/j.jcis.2022.06.058. Epub 2022 Jun 17.
The design of conductive hydrogels integrating anti-fatigue, high sensitivity, strong mechanical property and good sterilization performance remains a challenge. We innovatively introduced metal coordination in covalently crosslinked Pluronic F-127 micelle network and synthesized nanocomposite conductive tough hydrogel through the combination of covalent crosslinking, metal coordination and silver nanowire reinforcement. Compared with pure diacylated PF127 hydrogel (PF127), the tensile strength of PF-AA-AM-Al/Ag0.25 hydrogel reaching 1.4 MPa was about 10 times than that of PF127. The toughness of PF-AA-AM-Al/Ag0.25 reaches 1.88 MJ/m. Compared with PF-AA-AM-Al, the introduction of silver nanowires increased the fatigue life of PF-AA-AM-Al/Ag0.25 by 200% (31837 cycles), 170% (12804 cycles) and 1022% (511 cycles) under 100%, 120% and 150% ultimate tensile strains, respectively. Besides, the PF-AA-AM-Al/Ag0.25 showed strain sensitivity to small deformation (Gauge factor = 2.42) in wearable tests on hands and knees. In addition, the PF-AA-AM-Al/Ag0.25 had good cytocompatibility and antibacterial performance that bacteria killing ratio of 98% to S. aureus and 99% to E. coli. Finally, a viscoelastic numerical constitutive model was established based on finite element method to study the damage failure history of the material. Comparative analysis showed that local stress concentration was the main factor leading to the failure of hydrogel.
设计集抗疲劳、高灵敏度、高强度和良好杀菌性能于一体的导电水凝胶仍然是一个挑战。我们创新性地在共价交联的 Pluronic F-127 胶束网络中引入金属配位,并通过共价交联、金属配位和银纳米线增强相结合,合成了纳米复合导电坚韧水凝胶。与纯二酰化 PF127 水凝胶(PF127)相比,拉伸强度达到 1.4 MPa 的 PF-AA-AM-Al/Ag0.25 水凝胶约为 PF127 的 10 倍。PF-AA-AM-Al/Ag0.25 的韧性达到 1.88 MJ/m。与 PF-AA-AM-Al 相比,引入银纳米线将 PF-AA-AM-Al/Ag0.25 的疲劳寿命分别提高了 200%(31837 次循环)、170%(12804 次循环)和 1022%(511 次循环),在 100%、120%和 150%的极限拉伸应变下。此外,PF-AA-AM-Al/Ag0.25 在手部和膝盖的可穿戴测试中对小变形具有应变敏感性(应变系数=2.42)。此外,PF-AA-AM-Al/Ag0.25 具有良好的细胞相容性和抗菌性能,对金黄色葡萄球菌和大肠杆菌的杀菌率分别达到 98%和 99%。最后,基于有限元法建立了粘弹性数值本构模型,以研究材料的损伤失效历史。对比分析表明,局部应力集中是导致水凝胶失效的主要因素。