超亲水性
润湿
耐久性
制作
工作(物理)
发电
风力发电
过程(计算)
经济短缺
机械工程
环境科学
材料科学
工艺工程
纳米技术
海洋工程
保险丝(电气)
汽车工程
模拟
计算机科学
超纯水
接触角
电
风速
机器人
工程类
作者
Junhao Liu,Congji Zhang,Tianze Zhang,Guopeng Chen,Yangbo Zhong,Fengxiang Chen,Shangzhen Xie,Zhiguang Guo
出处
期刊:Langmuir
[American Chemical Society]
日期:2025-09-20
卷期号:41 (38): 26411-26419
被引量:2
标识
DOI:10.1021/acs.langmuir.5c03431
摘要
This study aimed to address the global challenges of freshwater scarcity and energy shortage by developing a bioinspired and multifunctional fog collector. Drawing inspiration from the architecture of unpowered ventilation caps and the surface structure of desert beetles, the researchers engineered a three-dimensional device featuring a wettability gradient. This advanced structure featured a 360° array of blades composed of superhydrophobic surfaces and superhydrophilic regions, enabling omnidirectional fog collection while simultaneously utilizing rotational motion to generate electricity. Experimental evaluations demonstrated that the device achieved a fog collection efficiency of 7620 mg cm-2 h-1 under conditions of 2.6 m/s wind speed and 100% relative humidity. Additionally, the system generated a stable electrical output of 0.6 V and 5 mA at a wind speed of 7 mph. The fabrication process involved laser scanning and chemical modification to establish superhydrophobic and superhydrophilic regions, thereby creating a wettability gradient. This configuration, in conjunction with centrifugal forces, facilitated the effective capture and directed transport of water droplets. The device also exhibited robust durability across repeated experimental trials, underscoring its suitability for prolonged use. This work presented a novel design paradigm for fog collection systems and offered promising applications in mitigating both water and energy scarcity.
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