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受蜥蜴皮肤启发的纳米纤维毛细管网络与光滑表面相结合用于高效雾收集。

Lizard-Skin-Inspired Nanofibrous Capillary Network Combined with a Slippery Surface for Efficient Fog Collection.

作者信息

Zhang Yufei, Meng Na, Babar Aijaz Ahmed, Wang Xianfeng, Yu Jianyong, Ding Bin

机构信息

Innovation Center for Textile Science and Technology, College of Textiles, Donghua University, Shanghai 201620, China.

Innovation Center for Textile Science and Technology, Donghua University, Shanghai 200051, China.

出版信息

ACS Appl Mater Interfaces. 2021 Aug 4;13(30):36587-36594. doi: 10.1021/acsami.1c10067. Epub 2021 Jul 26.

Abstract

Freshwater shortage is a critical global issue that needs to be resolved urgently. Efficient water collection from fog provides a promising and sustainable solution to produce clean drinking water, especially in the desert and arid regions. Nature has long served as our best source of inspiration for designing new structures and developing new materials. Herein, we report a strategy to design a novel Janus fog collector with a hydrophilic lizard-skin-like nanofibrous network upper surface and hydrophobic slippery lower surface using a simple and feasible method of coating and electrospinning. We analyze the forming law of the lizard-skin-like nanofibrous network structure on different substrates using electric field simulation. The resulting copper mesh-based Janus fog collector exhibits superior water-collecting efficiency (907 mg cm h) and long-term durability, achieving directional transport of tiny droplets and high-efficiency water collection. However, there are few reports on the combination of the lizard-skin-like nanofibrous capillary network and slippery surface for efficient fog collection. Therefore, we believe that this work will open a new avenue to collect water efficiently and also provide clues to research on the lizard-skin-like nanofibrous network structure.

摘要

淡水短缺是一个亟待解决的全球性关键问题。从雾气中高效收集水分,为生产清洁饮用水提供了一种有前景的可持续解决方案,尤其是在沙漠和干旱地区。长期以来,大自然一直是我们设计新结构和开发新材料的最佳灵感来源。在此,我们报告一种策略,通过简单可行的涂层和静电纺丝方法,设计一种新型的 Janus 集雾器,其具有亲水性蜥蜴皮状纳米纤维网络上表面和疏水性光滑下表面。我们利用电场模拟分析不同基底上蜥蜴皮状纳米纤维网络结构的形成规律。所得基于铜网的 Janus 集雾器表现出卓越的集水效率(907 mg cm h)和长期耐用性,实现了微小液滴的定向传输和高效集水。然而,关于蜥蜴皮状纳米纤维毛细管网络与光滑表面相结合以实现高效集雾的报道很少。因此,我们相信这项工作将开辟一条高效集水的新途径,也为蜥蜴皮状纳米纤维网络结构的研究提供线索。

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