Zhang Yiwen, Liu Tao, Kang Jian, Guo Na, Guo Zhangwei, Chen Jinghao, Yin Yansheng
College of Ocean Science and Engineering, Shanghai Maritime University, Shanghai, China.
State Key Laboratory of RAL, Northeastern University, Shenyang, China.
Front Microbiol. 2022 Jun 16;13:934966. doi: 10.3389/fmicb.2022.934966. eCollection 2022.
The fabrication of an eco-friendly, multi-functional, and mechanically robust superhydrophobic coating using a simple method has many practical applications. Here, inspired by shell nacre, the micro- or nano-scale surface roughness that is necessary for superhydrophobic coatings was formed -induced mineralization. The biomineralized film coated with hexadecyltrimethoxysilane (HDTMS) exhibited superhydrophobicity with water contact angles of 156°. The biomimetic HDTMS/calcite-coating showed excellent self-cleaning, anti-icing, and anti-corrosion performances. Furthermore, mechanically robust superhydrophobicity could be realized by hierarchically structured biomineralized surfaces at two different length scales, with a nano-structure roughness to provide water repellency and a micro-structure roughness to provide durability. Our design strategy may guide the development of "green" superhydrophobic coatings that need to retain effective multi-functional abilities in harsh marine environments.
采用简单方法制备具有生态友好、多功能且机械坚固的超疏水涂层具有许多实际应用。在此,受贝壳珍珠层启发,通过诱导矿化形成了超疏水涂层所需的微米或纳米级表面粗糙度。涂有十六烷基三甲氧基硅烷(HDTMS)的生物矿化膜表现出超疏水性,水接触角为156°。仿生HDTMS/方解石涂层表现出优异的自清洁、防冰和防腐性能。此外,通过在两个不同长度尺度上构建分层结构的生物矿化表面,可以实现机械坚固的超疏水性,其中纳米结构粗糙度提供疏水性,微米结构粗糙度提供耐久性。我们的设计策略可能会指导“绿色”超疏水涂层的开发,这种涂层需要在恶劣的海洋环境中保持有效的多功能能力。