材料科学
聚氨酯
光热治疗
自愈
氢键
氧化物
紫外线
铜
光热效应
兴奋剂
锌
化学工程
光化学
纳米技术
复合材料
光电子学
有机化学
冶金
分子
替代医学
化学
医学
病理
工程类
作者
Huimeng Feng,Wei Wang,Tong Wang,Lei Zhang,Wen Li,Jue Hou,Shougang Chen
标识
DOI:10.1016/j.jmst.2022.06.019
摘要
Photo-induced self-healing composites have attracted more and more attention as a kind of materials that can be controlled remotely and accurately in real time. Here, we report a strategy of a photo-responsive system based on hydrogen and ion bonds capable of performing self-healing process by ultraviolet wavelengths, which is covalently cross-linked zinc-dimethylglyoxime-polyurethane coordination network with triple dynamic bonds. The recombination of hydrogen bond and metal coordination bond produces effective healing performance. The self-healing behavior and temperature dependence of 3D micro-crack is investigated by molecular dynamics simulations to reveal the mechanism of self-healing at molecular level. Moreover, the hybrid of copper-doped zinc oxide not only provides metal coordination bonds to enhance the self-healing rate, but also enhances the photothermal effect and anti-bacterial properties of polyurethane. Importantly, doping of copper generates more defects and forms a space charge layer on the surface of zinc oxide. The defects could trap surface electrons and holes, preventing the recombination of photo-induced electron-hole pairs, generating more heat through lattice vibration. Therefore, under ultraviolet light irradiation, the polyurethane can reach 62.7 °C for 60 s, and the scratches of the polyurethane can be healed within 30 min and fully healed within 1 h.
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