Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei University, Wuhan, People's Republic of China; State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou, People's Republic of China.
Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei University, Wuhan, People's Republic of China; State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou, People's Republic of China.
J Colloid Interface Sci. 2021 Jun;591:418-428. doi: 10.1016/j.jcis.2021.01.076. Epub 2021 Feb 2.
Inspired by Nepenthes pitcher plants, slippery liquid-infused porous surfaces (SLIPSs) have attracted wide attention and exhibited remarkable liquid repellency, droplet motion control and antifouling properties. However, lubricant-impregnated surfaces have poor durability, leading to loss of control of the movements of droplets during applications. Herein, WO-based slippery coatings with high stability were prepared by the spray method and photocatalytic reaction. Notably, on the basis of the hierarchical structures, the strong intermolecular forces between the polydimethylsiloxane brush and silicone oil led to the formation of a stable lubricant layer on the WO-based slippery coating, which can suppress lubricant loss during water collection. After a series of stability tests, such as high-speed centrifugation, long-term storage, acidic solution and multiple heating/cooling cycles, the biomimetic slippery surface still displays excellent surface-slippery stability. Furthermore, the slippery surface exhibits superior water mist capture, water droplet expansion and harvested water removal abilities, leading to good water collection performance. The silicone oil content in the collected water was 28 mg/L, demonstrating that the loss of oil was lower during the water collection process. Even under harsh environments, including multiple heating/cooling cycles, long-term storage and high shear force, lubricant-impregnated coatings can also maintain good water collection efficiency. Therefore, these slippery coatings are promising for widespread application.
受猪笼草 pitcher 植物的启发,滑液浸润多孔表面(SLIPSs)引起了广泛关注,并表现出显著的抗液体性、液滴运动控制和抗污性能。然而,润滑剂浸渍表面的耐久性差,导致在应用过程中无法控制液滴的运动。本文采用喷涂法和光催化反应制备了具有高稳定性的 WO 基滑液涂层。值得注意的是,在分层结构的基础上,聚二甲基硅氧烷刷与硅油之间的强分子间力导致 WO 基滑液涂层上形成了稳定的润滑剂层,从而抑制了在水收集过程中润滑剂的损失。经过一系列稳定性测试,如高速离心、长期储存、酸性溶液和多次加热/冷却循环,仿生滑面仍表现出优异的表面滑稳性。此外,滑面表现出优越的水雾捕获、液滴膨胀和收集水去除能力,从而具有良好的水收集性能。收集水中的硅油含量为 28mg/L,表明在水收集过程中油的损失较低。即使在恶劣的环境下,包括多次加热/冷却循环、长期储存和高剪切力,浸渍有润滑剂的涂层也能保持良好的水收集效率。因此,这些滑液涂层具有广泛应用的前景。