材料科学
涂层
润滑
图层(电子)
耐久性
耐磨性
复合材料
软骨
芯(光纤)
解耦(概率)
润滑性
纳米技术
摩擦学
聚合物
生物相容性材料
仿生材料
润滑油
生物相容性
关节软骨
磨料
逐层
生物医学工程
纳米结构
作者
Wei Sun,Xiaoxiao Sun,Junsheng Zhang,Lin Wu,Juan Wang,Wei Wang,Yi Cao,Bin Xue
标识
DOI:10.1038/s41467-026-69322-2
摘要
Hydrogel coatings are a promising strategy to reduce friction and wear in biomedical implants, yet replicating the durability of natural cartilage remains a key challenge due to the inherent trade-off between low friction and high wear resistance. Here, we present a picot-fiber hydrogel coating (PFHC) that mimics the hierarchical architecture of cartilage by integrating a lubricious surface layer with a tough, fiber-reinforced core layer. The picot fibers, formed by folded peptide strands with hidden loops, endow the core layer with efficient load-bearing capacity, while the loosely packed, open-structured top layer preserves hydration lubrication. The resulting PFHC achieves both ultralow friction (~0.009) and high wear resistance under long-term sliding over 100,000 cycles, comparable to natural cartilage. By decoupling lubrication and load-bearing functionalities across distinct structural layers, PFHC overcomes the conventional limitations of hydrogel coatings, providing a generalizable strategy to integrate lubrication and mechanical durability for reliable, long-lasting implant interfaces. Hydrogel coatings have potential in friction reduction, but achieving the required durability is challenging. Here, the authors report a picot fibre hydrogel coating with a hierarchical structure, including a lubricious surface layer and fibre-reinforced core layer.
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