在具有特殊润湿性的拓扑工程表面中实现真实鲁棒性的策略

IF 9.1
Droplet Pub Date : 2026-01-14 DOI:10.1002/dro2.70040
Sin-Yung Siu, Yeonhui Choo, Chiu-Wing Chan, Xiaonan Liu, Chuanbo Hu, Zuankai Wang, Kangning Ren
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引用次数: 0

摘要

具有特殊润湿性的超润湿工程拓扑结构提供了定制的功能和对润湿和液滴行为的精确控制,将它们与随机结构的表面区分开来。这些特性对于需要精度和效率的应用至关重要,例如定向液滴传输、各向异性润湿、智能涂层、热管理等。然而,对工程地形的依赖使得这些表面容易受到结构损伤,即使是在纳米/微观水平上,也会导致实际情况下的功能退化。这篇综述专门讨论了工程拓扑表面所面临的耐久性挑战,不包括随机结构。我们首先考察旨在减轻在现实场景中遇到的实际挑战的稳健策略。接下来,我们概述了支撑这些表面的结构设计原则,并整合了来自户外、水下和专业应用的实际案例,以说明应对多方面挑战的不同方法。最后,我们分析了与扩大制造工艺有关的实际问题,并确定了未来研究的领域。通过剖析结构完整性、功能效率和材料选择之间的复杂关系,本综述旨在提供对耐久性问题的全面理解。它还为提高现实世界中具有特殊润湿性的表面的使用寿命提供了战略路线图,特别关注那些具有工程拓扑结构的表面,同时明确排除随机结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Strategies for achieving real-world robustness in topologically engineered surfaces with special wettability

Strategies for achieving real-world robustness in topologically engineered surfaces with special wettability

Engineered topologies on superwetting with special wettability provide tailored functionalities and precise control over wetting and droplet behaviors, setting them apart from randomly structured surfaces. These features are crucial for applications requiring precision and efficiency, for example, directional droplet transport, anisotropic wetting, smart coating, thermal management, etc. Nonetheless, the reliance on engineered topographies renders these surfaces susceptible to structural damage, even at nano/micro-level, leading to functional deterioration in practical scenarios. This review specifically addresses durability challenges faced by the surfaces with engineered topologies, excluding random structures. We commence by examining robust strategies aimed at mitigating practical challenges encountered in real-world scenarios. Next, we outline the structural design principles that underpin these surfaces, integrating real-world examples from outdoor, underwater, and specialized applications are integrated to illustrate diverse approaches for tackling the multifaceted challenges. Finally, we analyze practical issues related to scaling up fabrication processes and identify areas for future research. By dissecting the intricate relationships between structural integrity, functional efficiency, and material selection, this review aims to provide a comprehensive understanding of durability issues. It also offers a strategic roadmap for enhancing the longevity of surfaces with special wettability in the real world, specifically focusing on those with engineered topologies while explicitly excluding random structures.

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CiteScore
6.60
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