Choi Yeongu, Baek Keuntae, So Hongyun
Department of Mechanical Engineering, Hanyang University, Seoul, 04763, South Korea.
Institute of Nano Science and Technology, Hanyang University, Seoul, 04763, South Korea.
Sci Rep. 2023 Jul 1;13(1):10691. doi: 10.1038/s41598-023-37461-x.
Freshwater acquisition methods under various environments are required because water scarcity has intensified worldwide. Furthermore, as water is an essential resource for humans, a freshwater acquisition method that can be utilized even under harsh conditions, such as waterless and polluted water environments, is highly required. In this study, a three-dimensional (3D) printing-assisted hierarchically structured surface with dual-wettability (i.e., surface with both hydrophobic and hydrophilic region) for fog harvesting was developed by mimicking the biological features (i.e., cactus spines and elytra of Namib Desert beetles) that have effective characteristics for fog harvesting. The cactus-shaped surface exhibited self-transportation ability of water droplet, derived from the Laplace pressure gradient. Additionally, microgrooved patterns of the cactus spines were implemented using the staircase effect of 3D printing. Moreover, a partial metal deposition method using wax-based masking was introduced to realize the dual wettability of the elytra of the Namib Desert beetle. Consequently, the proposed surface exhibited the best performance (average weight of 7.85 g for 10 min) for fog harvesting, which was enhanced by the synergetic effect between the Laplace pressure gradient and surface energy gradient. These results support a novel freshwater production system that can be utilized even in harsh conditions, such as waterless and polluted water environments.
由于全球水资源短缺问题日益严重,因此需要各种环境下的淡水获取方法。此外,水是人类的重要资源,因此迫切需要一种即使在无水和水污染等恶劣条件下也能使用的淡水获取方法。在本研究中,通过模仿具有有效雾收集特性的生物特征(即仙人掌刺和纳米布沙漠甲虫的鞘翅),开发了一种用于雾收集的具有双润湿性的三维(3D)打印辅助分层结构表面(即具有疏水和亲水区域的表面)。仙人掌形状的表面表现出水滴的自运输能力,这源于拉普拉斯压力梯度。此外,利用3D打印的阶梯效应实现了仙人掌刺的微槽图案。此外,引入了一种基于蜡掩膜的部分金属沉积方法,以实现纳米布沙漠甲虫鞘翅的双润湿性。因此,所提出的表面在雾收集方面表现出最佳性能(10分钟内平均重量为7.85克),这通过拉普拉斯压力梯度和表面能梯度之间的协同效应得到了增强。这些结果支持了一种新型淡水生产系统,该系统即使在无水和水污染等恶劣条件下也能使用。