J. Mater. Sci. Technol. ›› 2025, Vol. 213: 135-145.DOI: 10.1016/j.jmst.2024.07.008

• Research Article • Previous Articles     Next Articles

Nacre-inspired robust antifouling amorphous coating via in-situ constructing 3D interconnected diffusion channels

Tian-Xiao Lianga, Peng-Yu Zhua, Muhammad Arslan Hafeeza, Muhammad Yasira,b, Cheng Zhanga,*, Lin Liua,*   

  1. aSchool of Materials Science and Engineering, State Key Lab for Materials Processing and Die & Mold Technology, Huazhong University of Science and Technology, Wuhan 430074, China;
    bDepartment of Materials Science & Engineering, Institute of Space Technology, Islamabad 44000, Pakistan
  • Received:2024-04-25 Revised:2024-06-18 Accepted:2024-07-02 Published:2025-04-01 Online:2025-04-01
  • Contact: *E-mail address: czhang@hust.edu.cn (C. Zhang), lliu2000@mail.hust.edu.cn (L. Liu)

Abstract: Achieving a delicate synergy between mechanical robustness and antifouling attributes in coatings remains a formidable challenge for marine applications. Inspired by the assembly of nacre, we present a novel approach to fabricate a nacre-like metallic coating. This coating comprises an amorphous matrix with excellent anti-corrosion and anti-wear properties, as well as Cu-rich 3D interconnected channels for antifouling function. The coating is produced by high velocity oxygen fuel (HVOF) thermal spraying of surface-modified Fe-based amorphous powders with a Cu-layer. The resulting coating exhibits exceptional mechanical robustness, including high resistance to erosion, abrasion, and impact, surpassing conventional polymer antifouling coatings. Furthermore, the controlled Cu+ leaching capability of the in-situ constructed 3D interconnected diffusion channels, facilitated by the Cu-rich intersplats, contributes to the remarkable antifouling performance. This includes nearly 100 % resistance to bacterial adhesion after 1 day of immersion and over 98 % resistance to algal attachment after 7 d of immersion, resulting in a prolonged service lifetime. Notably, even after 200 cycles of wear damage, the Cu-modified amorphous coating still maintains its excellent antifouling properties. The Cu-rich intersplats play a critical role in transporting and sustainably leaching Cu ions, thereby accounting for the outstanding antifouling performance. Ultimately, we aim to advance the design of high-performance coatings suited for diverse marine applications, where both the mechanical robustness and antifouling properties are essential.

Key words: Amorphous coating, Nacre-like structure, Antifouling, Anti-wear, Thermal spray