Hubei Collaborative Innovation Centre for Advanced Organic Chemical Materials and 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.
Langmuir. 2018 Dec 18;34(50):15259-15267. doi: 10.1021/acs.langmuir.8b03418. Epub 2018 Nov 30.
The leaf of the plant pitaya shows excellent fog harvesting behavior through its 1D thorns with wire-like microstructures. The thorns of it cannot provide enough driving force for the droplet transportation by the special structure and chemistry gradient as the cactus thorns, but it showed efficient water supply which improved the fog harvesting greatly. The mechanism is studied based on 1D copper wire with similar 1D wire-like microstructure and wettability. This structure can significantly reduce the deviation of the fog-laden winds, and the surface intrinsic hydrophility makes water accumulate on it in the form of droplets, which endow it with an efficient water supply that is ∼100 times faster than that on a 2D-flat surface. In addition, it can also enhance the fog capture and water removal. The 3D fog collector composed of 1D microcopper wires has been fabricated which show a high fog harvesting efficiency of ∼13%. This work explains the role of 1D wire-like microstructure in efficient fog harvesting in a different view and provides new insight into the application of developing a more efficient fog collector.
该植物火龙果的叶片通过具有线状微观结构的 1D 刺表现出优异的雾收集行为。它的刺不像仙人掌刺那样通过特殊的结构和化学梯度提供足够的液滴输运驱动力,但它表现出高效的供水能力,大大提高了雾收集效率。该机制是基于具有类似 1D 线状微观结构和润湿性的 1D 铜丝进行研究的。这种结构可以显著减少含雾风的偏差,并且表面固有亲水性使水以液滴的形式在其上积聚,赋予其比 2D 平面表面快约 100 倍的高效供水。此外,它还可以增强雾捕获和水去除。已经制造出由 1D 微铜线组成的 3D 雾收集器,其雾收集效率高达约 13%。这项工作从不同的角度解释了 1D 线状微观结构在高效雾收集中的作用,并为开发更高效的雾收集器提供了新的见解。