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Mussel-inspired healing of a strong and stiff polymer

机译:贻贝灵感愈合强大僵硬的聚合物

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摘要

Self-healability will greatly improve the reliability, service life and maintenance of synthetic materials. However, it remains a big challenge to realize the self-healing of a strong and stiff polymer due to its poor molecular mobility. Inspired by the hardness and self-healability of the cuticle of mussel byssal threads, here we demonstrate that a stiff and strong polymer can heal itself through dynamic metal-ligand interactions. The polymer is comprised of nitrocatechol-substituted chitosan cross-linked by catechol-Fe complexation, which exhibits a tensile strength (63.6 +/- 2.2 MPa) and an elastic modulus (862.6 +/- 31 MPa) comparable to or even better than those of common engineering plastics. When subjected to multiple physical damages, the stiff polymer is able to recover its configuration integrity and mechanical properties autonomously via pH-induced coordination between Fe3+ and the catecholic moiety. Moreover, the polymer also exhibits interesting renewability, flame retardancy and solvent-tolerance. The application of the polymer is demonstrated by a weight-bearing test. Our investigation offers a bio-inspired strategy to design healable rigid polymers that have potential applications in various technological fields.
机译:自我康复性将大大提高合成材料的可靠性,使用寿命和维护。然而,由于其分子迁移率差,实现了强烈僵硬的聚合物的自我愈合仍然是一个很大的挑战。灵感来自贻贝对贻贝的硬度和自我康复性,在这里,我们证明了刚性和强的聚合物可以通过动态金属 - 配体相互作用来愈合。该聚合物包括通过儿茶酚-Fe络合交联的硝基替肽取代的壳聚糖,其表现出拉伸强度(63.6 +/- 2.2MPa)和弹性模量(862.6 +/- 31MPa),与那些相当或甚至更好共同工程塑料。当受到多种物理损伤时,硬化聚合物能够通过Fe3 +和发育部分之间的pH引起的pH诱导的协调来恢复其构造完整性和机械性能。此外,聚合物还表现出有趣的再生性,阻燃性和溶剂耐受性。通过负载试验证明了聚合物的施加。我们的调查提供了一种生物启发策略,可以设计具有各种技术领域的潜在应用的可愈合刚性聚合物。

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