材料科学
复合材料
相间
聚酰胺
玻璃纤维
结晶
极限抗拉强度
玻璃化转变
纤维
粘附
刮擦
聚合物
共价键
成核
作者
Shikun Zhao,Kai Xu,Tao Cai,Shuo Lou,Peng Kang,Qi Xin,Hang Zhao,Dali Gao
摘要
ABSTRACT Achieving optimal fiber impregnation and robust interfacial adhesion is critical for long glass fiber‐reinforced polyamide 6 (LGF‐PA6) composites. In this study, a high‐flow branched PA6 resin was synthesized to enhance impregnation efficiency. A multi‐scale interfacial architecture was subsequently engineered using APTES‐functionalized fibers and POE‐g‐MAH compatibilizer. Investigations revealed that loading POE‐g‐MAH established a robust organic–inorganic interface via covalent and hydrogen bonds dual‐mode bonding. Nanomechanical mapping confirmed the formation of a gradient interfacial transition zone of 449 nm, which effectively induced crystallization and refined the crystalline morphology. Consequently, the 30 wt% LGF‐PA6 composites achieved peak performance, featuring a tensile strength of 185 MPa and exceptional impact resistance at −40°C, alongside enhanced surface scratch resistance. These findings demonstrate that precise multi‐scale interfacial tuning, spanning molecular‐level bonding, interphase nanomechanics, and crystalline architecture, represents a pivotal strategy for the design of advanced structural composites targeting lightweight engineering applications.
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