Hu Zhen, Shao Qing, Huang Yudong, Yu Long, Zhang Dayu, Xu Xirong, Lin Jing, Liu Hu, Guo Zhanhu
School of Chemistry and Chemical Engineering, MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, Harbin Institute of Technology, Harbin 150001, People's Republic of China.
Nanotechnology. 2018 May 4;29(18):185602. doi: 10.1088/1361-6528/aab010. Epub 2018 Feb 16.
The interfacial microcracks in the resin matrix composites are difficult to be detected and repaired. However, the self-healing concept provides opportunities to fabricate composites with unusual properties. In the present study, photothermal conversion Ag-CuS nanoparticles were immobilized onto poly(p-phenylene benzobisoxazole) (PBO) fibers via a polydopamine chemistry. Benefitting from the photothermal effects of Ag-CuS, the obtained PBO fibers (Ag-CuS-PBO) efficiently converted the light energy into heat under Xenon lamp irradiation. Then, single PBO fiber composites were prepared using thermoplastic polyurethane as the matrix. It was found that the interfacial damage caused by single fiber pull-out was simply self-healed by Xe light irradiation. This wonderful interfacial damage self-healing property was mainly attributed to the in situ heating generation via photothermal effects of Ag-CuS in the composite interface. This paper reports a novel strategy to construct advanced composites with light-triggered self-healing properties, which will provide inspiration for preparing high performance composite materials.
树脂基复合材料中的界面微裂纹难以检测和修复。然而,自愈合概念为制造具有特殊性能的复合材料提供了机会。在本研究中,通过聚多巴胺化学方法将光热转换Ag-CuS纳米颗粒固定在聚对苯撑苯并双恶唑(PBO)纤维上。受益于Ag-CuS的光热效应,所制备的PBO纤维(Ag-CuS-PBO)在氙灯照射下能有效地将光能转化为热能。然后,以热塑性聚氨酯为基体制备了单根PBO纤维复合材料。研究发现,单纤维拔出引起的界面损伤通过Xe光照射可简单地实现自愈合。这种出色的界面损伤自愈合性能主要归因于复合材料界面中Ag-CuS的光热效应产生的原位加热。本文报道了一种构建具有光触发自愈合性能的先进复合材料的新策略,这将为制备高性能复合材料提供灵感。