Boosting Droplet Transport for Fog Harvest.

IF 8.3 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
ACS Applied Materials & Interfaces Pub Date : 2024-11-13 Epub Date: 2024-10-30 DOI:10.1021/acsami.4c10213
Qianqin Zhang, Siyu Wang, Jinlong Song, Xiaolong Yang
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引用次数: 0

Abstract

Wedge-shaped superhydrophilic tracks have been considered as one of the most effective ways to transport droplets for diverse cutting-edge applications, e.g., energy harvesting and lab-on-a-chip devices. Although significant progress, such as serial wedge-shaped tracks with curved edges, has evolved to advance the liquid transport, the ultrafast and long-distance transporting of drop-shaped liquid remains challenging. Here, inspired by the cactus spine that enables fast droplet transport and the serial spindle knot of spider silk, which is capable of collecting condensate from a wide range of distances, we created serial wedge-shaped superhydrophilic patterns and optimized their side edges with a convex brachistochrone curve to boost the acceleration. The junctions of the serial patterns were meanwhile reformed into concave brachistochrone curves to lower the energy barrier for sustained transport. For transporting the liquid in drop shapes to the long distance at high velocity, the wedge-shaped tracks were slenderized to the greatest extent to suppress the liquid spreading and thus prevent the degradation of the Laplace driving force. Moreover, the junction that determines the energy barrier of droplet striding was carefully designed based on the principle of minimizing momentum loss. The exquisite architecture design pushed the droplet transport to a maximum instantaneous velocity of 207.7 mm·s-1 and an outermost transport distance of 120.5 mm, exceeding most wettability or geometric gradient based reports. The transported volume of the droplets can be readily regulated by simply scaling the created architectures. The enhanced droplet transport facilitates the motion and departure of the cohered droplets, enabling a 1.9-fold rise of the water collection rate and 12-fold increase of the heat transfer coefficient during the fog harvest test. This scalable, controllable, and easily fabricatable surface design provides an essential pathway in realizing high-performance manipulation of droplets and possibly pioneers substantial innovative applications in multidisciplinary fields. Those include but are not limited to energy harvesting, lab-on-a-chip devices, and MEMS systems.

Abstract Image

促进雾滴输送,实现雾收。
楔形超亲水轨道一直被认为是传输液滴的最有效方法之一,可用于各种尖端应用,如能量收集和片上实验室设备。尽管在推进液体传输方面取得了重大进展,如具有弯曲边缘的串行楔形轨道,但液滴形状液体的超快长距离传输仍具有挑战性。在此,我们受能实现液滴快速传输的仙人掌刺和能从远距离收集冷凝液的蜘蛛丝串联纺锤结的启发,创建了串联楔形超亲水图案,并优化了其具有凸轫曲线的侧边,以提高加速度。同时,我们还将串联图案的交界处改造成凹陷的 brachistochrone 曲线,以降低持续传输的能量障碍。为了将液滴形状的液体高速长距离输送,楔形轨道被最大程度地细化,以抑制液体扩散,从而防止拉普拉斯驱动力的衰减。此外,还根据动量损失最小化的原则,精心设计了决定液滴跨步能量障碍的结点。精巧的结构设计将液滴传输的最大瞬时速度推至 207.7 mm-s-1,最外层传输距离达 120.5 mm,超过了大多数基于润湿性或几何梯度的报告。液滴的传输体积可通过简单地调整所创建的结构进行调节。增强的液滴传输促进了相聚液滴的运动和离去,使雾收集试验中的集水率提高了 1.9 倍,传热系数提高了 12 倍。这种可扩展、可控制、易制造的表面设计为实现对液滴的高性能操纵提供了重要途径,并有可能在多学科领域开拓实质性的创新应用。这些应用包括但不限于能量收集、片上实验室设备和微机电系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Materials & Interfaces
ACS Applied Materials & Interfaces 工程技术-材料科学:综合
CiteScore
16.00
自引率
6.30%
发文量
4978
审稿时长
1.8 months
期刊介绍: ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.
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