4.8 Article

Chemically Stable and Mechanically Durable Superamphiphobic Aluminum Surface with a Micro/Nanoscale Binary Structure

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 6, 期 17, 页码 15188-15197

出版社

AMER CHEMICAL SOC
DOI: 10.1021/am503441x

关键词

aluminum; hybrid structures; mechanical durability; stability; superamphiphobicity

资金

  1. National Natural Science Foundation of China [21103053, 91023002, 51073059]
  2. National Program on Key Basic Research Project [2012CB932900, 2009CB930604]
  3. Cooperation Project in Industry, Education and Research of Guangdong Province
  4. Ministry of Education of China [2011B090400376]

向作者/读者索取更多资源

We developed a simple fabrication method to prepare a superamphiphobic aluminum surface. On the basis of a low-energy surface and the combination of micro- and nanoscale roughness, the resultant surface became super-repellent toward a wide range of liquids with surface tensions of 25.3-72.1 mN m(-1). The applied approach involved (1) the formation of an irregular microplateau structure on an aluminum surface, (2) the fabrication of a nanoplatelet structure, and (3) fluorination treatment. The chemical stability and mechanical durability of the superamphiphobic surface were evaluated in detail. The results demonstrated that the surface presented an excellent chemical stability toward cool corrosive liquids (HCl/NaOH solutions, 25 degrees C) and 98% concentrated sulfuric acid, hot liquids (water, HCl/NaOH solutions, 30-100 degrees C), solvent immersion, high temperature, and a long-term period. More importantly, the surface also exhibited robust mechanical durability and could withstand multiple-fold, finger-touch, intensive scratching by a sharp blade, ultrasonication treatment, boiling treatment in water and coffee, repeated peeling by adhesive tape, and even multiple abrasion tests under 500 g of force without losing superamphiphobicity. The as-prepared superamphiphobic surface was also demonstrated to have excellent corrosion resistance. This work provides a simple, cost-effective, and highly efficient method to fabricate a chemically stable and mechanically robust superamphiphobic aluminum surface, which can find important outdoor applications.

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