Rong Wei, Jian Gao, Xiang Li, Jianwen Peng, Yanji Zhu, Siye Zhang, Bingbing Zhang, Juantao Zhang, Naixin Lv, Anqing Fu, Huaiyuan Wang
Superamphiphobic coatings are prone to abrupt wetting failure in high-wear environments owing to the destruction of surface micro/nano-structures, which limits their durability in practical applications. Here, a gradient self-similar structure along the coating thickness is designed and realized via spray deposition, enabling continuous distribution of functional fillers so that newly exposed interfaces during wear retain micro/nanoscale roughness and low-surface-energy chemistry similar to those of the original surface. This design converts abrupt wetting failure into a gradual and controllable degradation process, thereby achieving "bulk inheritance" of the superamphiphobic function. Consistent with this bulk-inheritance mechanism, the coating exhibits markedly enhanced wear resistance and wetting retention under severe Taber abrasion and particle impact compared with conventional surface-engineered superamphiphobic coatings. In addition, the gradient architecture provides an effective electrochemical barrier, endowing the coating with excellent corrosion protection. This work establishes a self-similar structural strategy to regulate the failure behavior of superamphiphobic coatings, offering a pathway toward durable performance in high-wear environments.