Sharma Vipul, Yiannacou Kyriacos, Karjalainen Markus, Lahtonen Kimmo, Valden Mika, Sariola Veikko
Faculty of Medicine and Health Technology, Tampere University Korkeakoulunkatu 3 33720 Tampere Finland
Faculty of Engineering and Natural Sciences, Tampere University P.O. Box 692 FI-33014 Finland.
Nanoscale Adv. 2019 Sep 4;1(10):4025-4040. doi: 10.1039/c9na00405j. eCollection 2019 Oct 9.
As the Earth's atmosphere contains an abundant amount of water as vapors, a device which can capture a fraction of this water could be a cost-effective and practical way of solving the water crisis. There are many biological surfaces found in nature which display unique wettability due to the presence of hierarchical micro-nanostructures and play a major role in water deposition. Inspired by these biological microstructures, we present a large scale, facile and cost-effective method to fabricate water-harvesting functional surfaces consisting of high-density copper oxide nanoneedles. A controlled chemical oxidation approach on copper surfaces was employed to fabricate nanoneedles with controlled morphology, assisted by bisulfate ion adsorption on the surface. The fabricated surfaces with nanoneedles displayed high wettability and excellent fog harvesting capability. Furthermore, when the fabricated nanoneedles were subjected to hydrophobic coating, these were able to rapidly generate and shed coalesced droplets leading to further increase in fog harvesting efficiency. Overall, ∼99% and ∼150% increase in fog harvesting efficiency was achieved with non-coated and hydrophobic layer coated copper oxide nanoneedle surfaces respectively when compared to the control surfaces. As the transport of the harvested water is very important in any fog collection system, hydrophilic channels inspired by leaf veins were made on the surfaces a milling technique which allowed an effective and sustainable way to transport the captured water and further enhanced the water collection efficiency by ∼9%. The system presented in this study can provide valuable insights towards the design and fabrication of fog harvesting systems, adaptable to arid or semi-arid environmental conditions.
由于地球大气中含有大量的水蒸气,一种能够收集其中一部分水的装置可能是解决水危机的一种经济高效且实用的方法。自然界中存在许多生物表面,由于具有分级微纳结构而表现出独特的润湿性,并且在水的沉积过程中起着重要作用。受这些生物微结构的启发,我们提出了一种大规模、简便且经济高效的方法来制造由高密度氧化铜纳米针组成的集水功能表面。采用在铜表面进行可控化学氧化的方法,并借助表面硫酸氢根离子吸附来制造具有可控形态的纳米针。所制造的带有纳米针的表面表现出高润湿性和出色的雾收集能力。此外,当对制造的纳米针进行疏水涂层处理时,它们能够快速产生并脱落合并的液滴,从而进一步提高雾收集效率。总体而言,与对照表面相比,未涂层和疏水层涂层的氧化铜纳米针表面的雾收集效率分别提高了约99%和约150%。由于在任何雾收集系统中,收集到的水的传输都非常重要,因此受叶脉启发在表面制作了亲水通道,采用铣削技术,这提供了一种有效且可持续的方式来传输捕获的水,并进一步将集水效率提高了约9%。本研究中提出的系统可为适应干旱或半干旱环境条件的雾收集系统的设计和制造提供有价值的见解。