Nguyen Luc The, Bai Zhiqing, Zhu Jingjing, Gao Can, Liu Xiaojing, Wagaye Bewuket T, Li Jiecong, Zhang Bin, Guo Jiansheng
Key Laboratory of Textile Science and Technology, Ministry of Education, College of Textiles, Donghua University, 2999 North Remin Road, Shanghai 201620, China.
Faculty of Garment Technology and Fashion Design, Hung Yen University of Technology and Education, Hai Duong 170000, Vietnam.
ACS Omega. 2021 Jan 28;6(5):3910-3920. doi: 10.1021/acsomega.0c05776. eCollection 2021 Feb 9.
Novel types of vertical filament mesh (VFM) fog harvesters, 3D VFM fog harvesters, and multilayer 3D VFM fog harvesters were developed by mimicking the water-harvesting nature of desert beetles and the spider silks from fog. Four different types of polymer filaments with different hydrophilic-hydrophobic properties were used. The polymer filaments were modified with the polyurethane-sodium alginate (PU-SA) mixture solution, and a simple spraying method was used to form alternating 3D PU-SA microbumps. Polymer VFMs exhibited a higher fog-harvesting efficiency than the vertical metal meshes. Moreover, the hydrophobic VFM was more efficient in fog harvesting than the hydrophilic VFM. Notably, the fog-harvesting efficiency of all VFMs increased by 30-80% after spraying with the mixed PU-SA solution to form a 3D geometric surface structure (3D PU-SA microbumps), which mimicked the desert beetle back surface. This modification caused the fog-harvesting efficiency of PTFE 3D VFM to be thrice higher than that of Fe VFM. This increase was attributed to the improved synergistic effects of fog capturing, droplet growing, and droplet shedding. The multilayer VFMs were more efficient in fog harvesting than the single-layer VFMs because of a larger droplet capture area. The fog-harvesting efficiency of two-layer and four-layer polymer VFMs was approximately 35% and about 45% higher than that of the single-layer polymer VFMs, respectively. The four-layer PTFE 3D VFM with the type B PU-SA bump surface (bump/PU-SA) had the highest efficiency of 287.6 mL/m/h. Besides the high fog-harvesting efficiency, the proposed polymer VFMs are highly stable, cost-effective, rust-free, and easy to install in practical applications. These advantages are ascribed to the elasticity of the polymer filaments. This work provides new ideas and methods for developing high-performance fog harvesters such as the 3D VFM.
通过模仿沙漠甲虫的集水特性和雾中的蜘蛛丝,研发出了新型垂直丝状网(VFM)雾收集器、3D VFM雾收集器和多层3D VFM雾收集器。使用了四种具有不同亲水-疏水特性的聚合物细丝。聚合物细丝用聚氨酯-海藻酸钠(PU-SA)混合溶液进行了改性,并采用简单的喷涂方法形成交替的3D PU-SA微凸起。聚合物VFM比垂直金属网表现出更高的雾收集效率。此外,疏水VFM在雾收集方面比亲水VFM更高效。值得注意的是,在用混合PU-SA溶液喷涂以形成模仿沙漠甲虫背部表面的3D几何表面结构(3D PU-SA微凸起)后,所有VFM的雾收集效率提高了30%-80%。这种改性使聚四氟乙烯3D VFM的雾收集效率比铁VFM高三倍。这种提高归因于雾捕获、液滴生长和液滴脱落的协同效应得到改善。多层VFM由于具有更大的液滴捕获面积,在雾收集方面比单层VFM更高效。两层和四层聚合物VFM的雾收集效率分别比单层聚合物VFM高约35%和约45%。具有B型PU-SA凸起表面(凸起/PU-SA)的四层聚四氟乙烯3D VFM效率最高,为287.6 mL/m/h。除了高雾收集效率外,所提出的聚合物VFM具有高度稳定性、成本效益高、无锈且易于在实际应用中安装。这些优点归因于聚合物细丝的弹性。这项工作为开发诸如3D VFM等高性能雾收集器提供了新的思路和方法。