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受蜘蛛丝启发的用于防腐的多氢键聚氨酯可自愈弹性体的机理探究

Mechanism Exploration of Spider-Silk-Inspired Multiple-Hydrogen-Bond Polyurethane Healable Elastomers for Anticorrosion.

作者信息

Xu Haoran, Wang Shunli, Li Wenlong, Hu Kaijing, Zhao Can, Jin Huichao, Tian Limei, Ren Luquan

机构信息

Key Laboratory of Bionic Engineering, Ministry of Education, Jilin University, Changchun 130022, China.

College of Biological and Agricultural Engineering, Jilin University, Changchun 130022, China.

出版信息

Nano Lett. 2025 Jul 2;25(26):10513-10520. doi: 10.1021/acs.nanolett.5c02123. Epub 2025 Jun 17.

Abstract

Spider-silk-inspired multiple-hydrogen-bond polyurethane (PU) healable elastomers have garnered significant attention across various industries. While individual hydrogen bonds are relatively weak, their collective cooperation generates strong interaction forces with geometrically hydrogen-bond-confined arrays. Under the guidance of this discovery, the synthesized PU elastomer (PU-MDI) had superior mechanical characteristics and a self-healing efficiency of 98%, which can provide a robust barrier to effectively delay the penetration of corrosive ions and resist external impact energy dissipation. PU-MDI exhibited excellent anticorrosion and anticavitation performance at conventional temperature. However, as temperature rose, the intensive multiple hydrogen bonds weakened and cracked, leading to a significant degradation in the functional properties of PU-MDI. This breakdown rendered PU-MDI unsuitable for elevated-temperature anticorrosion applications, and the study elucidated the inadequacy reasons. These findings offer critical insights into the practical application, directional development, and inadequacy prevention of multiple-hydrogen-bonded healable polymer materials, with implications for future anticorrosion and self-healing material innovation.

摘要

受蜘蛛丝启发的多氢键聚氨酯(PU)可自愈弹性体在各个行业都引起了广泛关注。虽然单个氢键相对较弱,但它们的协同作用会在几何形状受限的氢键阵列中产生强大的相互作用力。在此发现的指导下,合成的PU弹性体(PU-MDI)具有优异的机械性能,自愈效率达98%,能提供强大的屏障,有效延缓腐蚀性离子的渗透,并抵抗外部冲击能量耗散。PU-MDI在常温下表现出优异的防腐和抗空蚀性能。然而,随着温度升高,密集的多氢键会减弱并破裂,导致PU-MDI的功能性能显著下降。这种破坏使得PU-MDI不适用于高温防腐应用,该研究阐明了其不足的原因。这些发现为多氢键可自愈聚合物材料的实际应用、定向开发和不足预防提供了关键见解,对未来的防腐和自愈材料创新具有重要意义。

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