Tuning Superhydrophobic Materials with Negative Surface Energy Domains

Author:

Wu Zhongzhen1,Liu Liangliang2,Li Shunning1,Ji Shunping1,Chen Pinghu1ORCID,Cui Suihan1,Ma Zhengyong1,Weng Yuchang1,Huang Qian1,Wu Zhongcan1,Wu Hao1,Lin Yuan1ORCID,Fu Ricky K. Y.2,Lin Hai1,Tian Xiubo1,Chu Paul K.2ORCID,Pan Feng1ORCID

Affiliation:

1. School of Advanced Materials, Peking University Shenzhen Graduate School, Shenzhen 518055, China

2. Department of Physics and Materials Science, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong, China

Abstract

Hydrophobic/superhydrophobic materials with intrinsic water repellence are highly desirable in engineering fields including anti-icing in aerocrafts, antidrag and anticorrosion in ships, and antifog and self-cleaning in optical lenses, screen, mirrors, and windows. However, superhydrophobic material should have small surface energy (SE) and a micro/nanosurface structure which can reduce solid-liquid contact significantly. The low SE is generally found in organic materials with inferior mechanical properties that is undesirable in engineering. Intriguingly, previous theoretical calculations have predicted a negative SE for θ-alumina (θ-Al2O3), which inspires us to use it as a superhydrophobic material. Here, we report the experimental evidence of the small/negative SE of θ-Al2O3 and a θ-Al2O3-based superhydrophobic coating prepared by one-step scalable plasma arcing oxidation. The superhydrophobic coating has complete ceramic and desired micro/nanostructure and therefore exhibits excellent aging resistance, wear resistance, corrosion resistance, high-temperature tolerance, and burning resistance. Owing to the rarity of the small/negative SE in inorganic materials, the concept to reduce SE by θ-Al2O3 may foster a blowout to develop robust superhydrophobicity by complete inorganic materials.

Funder

Innovation and Technology Fund

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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