Enhanced Interfacial Adhesion and Dynamic Seawater Durability of Basalt Fiber/Epoxy Composites via PDA-Assisted In Situ Growth of UiO-66-NH2

Durable basalt fiber-reinforced polymer (BFRP) composites are needed for marine and offshore structures, where seawater exposure and hydrodynamic shear progressively degrade the fiber–matrix interface. To address this challenge, a hierarchical polydopamine (PDA)/UiO-66-NH2 interphase was constructed on basalt fibers through PDA-assisted in situ growth. PDA served as an adhesive interlayer and nucleation platform, enabling dense anchoring of UiO-66-NH2 crystals. Compared with that of unmodified fibers, the optimized interface increased single-fiber tensile strength by 23.9% and interfacial shear strength by 67.9%. At the laminate level, flexural strength and interlaminar shear strength increased by 43.5% and 44.6%, respectively, accompanied by a transition from interfacial debonding to predominantly resin cohesive failure. Under dynamic simulated-seawater exposure, the modified composites showed lower mass change and improved mechanical property retention. The enhanced performance is attributed to improved interfacial interactions, micro-/nanoscale mechanical interlocking, and delayed ingress of corrosive species. This work provides an interface engineering strategy for mechanically robust and seawater-durable BFRP composites.

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Publication Details

Journal
Polymers
Published
2026-10-05
DOI
https://doi.org/10.3390/polym18192425
Primary Topic
Fiber-reinforced polymer composites
Type
article
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article

Enhanced Interfacial Adhesion and Dynamic Seawater Durability of Basalt Fiber/Epoxy Composites via PDA-Assisted In Situ Growth of UiO-66-NH2

Dong Xiang, Bin Wang, Chunxia Zhao, Yingquan Zhou et al.
Polymers
Fiber-reinforced polymer composites
article

Enhanced Interfacial Adhesion and Dynamic Seawater Durability of Basalt Fiber/Epoxy Composites via PDA-Assisted In Situ Growth of UiO-66-NH2

Dong Xiang, Bin Wang, Chunxia Zhao, Yingquan Zhou, Guoqian Xie, Hui Li
article en

Abstract

Durable basalt fiber-reinforced polymer (BFRP) composites are needed for marine and offshore structures, where seawater exposure and hydrodynamic shear progressively degrade the fiber–matrix interface. To address this challenge, a hierarchical polydopamine (PDA)/UiO-66-NH2 interphase was constructed on basalt fibers through PDA-assisted in situ growth. PDA served as an adhesive interlayer and nucleation platform, enabling dense anchoring of UiO-66-NH2 crystals. Compared with that of unmodified fibers, the optimized interface increased single-fiber tensile strength by 23.9% and interfacial shear strength by 67.9%. At the laminate level, flexural strength and interlaminar shear strength increased by 43.5% and 44.6%, respectively, accompanied by a transition from interfacial debonding to predominantly resin cohesive failure. Under dynamic simulated-seawater exposure, the modified composites showed lower mass change and improved mechanical property retention. The enhanced performance is attributed to improved interfacial interactions, micro-/nanoscale mechanical interlocking, and delayed ingress of corrosive species. This work provides an interface engineering strategy for mechanically robust and seawater-durable BFRP composites.

PolymersVol. 18(19)
Southwest Petroleum University (CN)
Openalex Percentile: Top 21%
Fiber-reinforced polymer composites
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Enhanced Interfacial Adhesion and Dynamic Seawater Durability of Basalt Fiber/Epoxy Composites via PDA-Assisted In Situ Growth of UiO-66-NH2 — Dong Xiang, Bin Wang, et al. · Polymers (2026) | TGRS Research Map | TGRS