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Research Article | Open Access | Online First

Dragonfly wing-inspired MXene-reinforced self-locking interpenetrating network coating with ultralow friction and corrosion resistance

Mouji LiYuxia MaWufang YangShuanhong MaZhenjun PengBin LiBo Yu( )Feng ZhouWeimin Liu ( )
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China
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Abstract

Inspired by the rigid vein–flexible membrane hierarchical architecture of dragonfly wings, an exceptional natural system integrating strength, flexibility, and damage tolerance, we designed and fabricated a robust, multifunctional composite coating (O–H–M) based on polysilazane (OPSZ), hydroxyl-terminated polybutadiene (HTPB), and MXene nanosheets for synergistic lubrication and corrosion protection. This bioinspired design strategically integrates three complementary components: a rigid OPSZ backbone for structural support and substrate adhesion, flexible HTPB chains that enable energy dissipation via shear deformation and chain slippage, and two-dimensional (2D) MXene nanosheets serving dual roles as solid lubricants and nanoreinforcements. The “self-locking interpenetrating network” formed by chemical cross-linking between OPSZ and HTPB effectively mitigates the inherent brittleness of OPSZ, endowing the coating with remarkable toughness. MXene further enhances the load-bearing capacity and wear resistance while constructing a labyrinth barrier against corrosive species. The resulting O–H–M coating achieves an ultralow coefficient of friction (˂ 0.1) and a wear rate reduced by one order of magnitude compared with pure OPSZ. It also exhibits outstanding long-term corrosion resistance, decreasing the corrosion current density of Q235B by three orders of magnitude relative to the bare metal substrate, and maintains robust stability under coupled tribocorrosion conditions. Molecular dynamics simulations reveal that the superior lubricity originates from synergistic effects: The cross-linked network facilitates molecular chain mobility and energy dissipation, while MXene enables interlayer sliding to reduce shear stress. This work offers a practical and scalable paradigm for developing next-generation bioinspired multifunctional coatings that balance mechanical robustness, lubricity, and chemical stability, with great potential for harsh engineering environments.

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Cite this article:
Li M, Ma Y, Yang W, et al. Dragonfly wing-inspired MXene-reinforced self-locking interpenetrating network coating with ultralow friction and corrosion resistance. Friction, 2026, https://doi.org/10.26599/FRICT.2026.9441247

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Received: 12 December 2025
Revised: 04 March 2026
Accepted: 01 April 2026
Published: 22 September 2026
© The Author(s) 2026.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, http://creativecommons.org/licenses/by/4.0/).