State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute, Sichuan University, Chengdu, China.
Nat Commun. 2021 Feb 26;12(1):1291. doi: 10.1038/s41467-021-21577-7.
Self-healing materials integrated with excellent mechanical strength and simultaneously high healing efficiency would be of great use in many fields, however their fabrication has been proven extremely challenging. Here, inspired by biological cartilage, we present an ultrarobust self-healing material by incorporating high density noncovalent bonds at the interfaces between the dentritic tannic acid-modified tungsten disulfide nanosheets and polyurethane matrix to collectively produce a strong interfacial interaction. The resultant nanocomposite material with interwoven network shows excellent tensile strength (52.3 MPa), high toughness (282.7 MJ m, which is 1.6 times higher than spider silk and 9.4 times higher than metallic aluminum), high stretchability (1020.8%) and excellent healing efficiency (80-100%), which overturns the previous understanding of traditional noncovalent bonding self-healing materials where high mechanical robustness and healing ability are mutually exclusive. Moreover, the interfacical supramolecular crosslinking structure enables the functional-healing ability of the resultant flexible smart actuation devices. This work opens an avenue toward the development of ultrarobust self-healing materials for various flexible functional devices.
自愈合材料集成了优异的机械强度和同时高的愈合效率将是非常有用的在许多领域,然而,他们的制造已被证明是极具挑战性的。在这里,受生物软骨的启发,我们提出了一种超坚固的自修复材料,通过在树枝状单宁酸修饰的二硫化钨纳米片和聚氨酯基体之间的界面处结合高密度的非共价键,共同产生强的界面相互作用。所得的具有交织网络的纳米复合材料具有优异的拉伸强度(52.3 MPa)、高韧性(282.7 MJ m,比蜘蛛丝高 1.6 倍,比金属铝高 9.4 倍)、高拉伸性(1020.8%)和优异的愈合效率(80-100%),这颠覆了传统的非共价键自修复材料的以往认识,即高机械鲁棒性和愈合能力是相互排斥的。此外,界面超分子交联结构使所得的柔性智能致动器具有功能愈合能力。这项工作为各种柔性功能器件的超坚固自修复材料的发展开辟了道路。