Yin Lijie, Li Wei, Lu Yichen, He Liang, Tian Ming, Ning Nanying, Wang Wencai
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Key Laboratory of Beijing City for Preparation and Processing of Novel Polymer Materials, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Macromol Rapid Commun. 2025 Apr;46(7):e2400682. doi: 10.1002/marc.202400682. Epub 2024 Oct 10.
Ultrahigh molecular weight polyethylene (UHMWPE) fibers possess excellent mechanical properties, yet their applications are severely limited by surface inertness and low melting points. To enhance surface activity and temperature resistance, soluble polyimide (PI) is applied to the surface of UHMWPE fibers. A mussel-inspired biomimetic polycatechol/polyamine (PA) coating is initially constructed on the UHMWPE fiber surface by oxidative self-polymerization, serving as a secondary reaction platform. Subsequently, multifunctional UHMWPE-PA-PI fibers are prepared by depositing soluble PI on the fiber surface via impregnation. The PA and PI layers are firmly bonded by hydrogen bonding interactions and physical adhesion. The results show that the PI-coated UHMWPE fiber surface exhibits enhanced chemical activity, hydrophilicity, and thermal stability, with an increased thermal decomposition temperature of approximately 30 °C. Compared to pristine UHMWPE, the breaking force of UHMWPE-PA-PI fibers increases by 14.9%, and the interfacial adhesion strength between the fiber and rubber improves by 65.5%. The PI coatings also provide thermal insulation, acid resistance, and erasability functionalities. This modification strategy is highly efficient, simple, and less damaging, offering a novel solution to address UHMWPE fibers' surface inertness and temperature intolerance.
超高分子量聚乙烯(UHMWPE)纤维具有优异的机械性能,但其应用却受到表面惰性和低熔点的严重限制。为了提高表面活性和耐热性,将可溶性聚酰亚胺(PI)应用于UHMWPE纤维表面。首先通过氧化自聚合在UHMWPE纤维表面构建一种受贻贝启发的仿生聚邻苯二酚/多胺(PA)涂层,作为二级反应平台。随后,通过浸渍法将可溶性PI沉积在纤维表面制备出多功能UHMWPE-PA-PI纤维。PA层和PI层通过氢键相互作用和物理粘附牢固结合。结果表明,涂覆PI的UHMWPE纤维表面表现出增强的化学活性、亲水性和热稳定性,热分解温度提高了约30℃。与原始UHMWPE相比,UHMWPE-PA-PI纤维的断裂力提高了14.9%,纤维与橡胶之间的界面粘合强度提高了65.5%。PI涂层还具有隔热、耐酸和可擦除功能。这种改性策略高效、简单且损伤小,为解决UHMWPE纤维的表面惰性和不耐温问题提供了一种新的解决方案。