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基于3D非对称方结构表面实现的原位多向液体操控

In Situ Multi-Directional Liquid Manipulation Enabled by 3D Asymmetric Fang-Structured Surface.

作者信息

Sun Siqi, Zhang Yiyuan, Wu Shuangmei, Wang Liqiu

机构信息

Department of Mechanical Engineering, The Hong Kong Polytechnic University, Hong Kong, 999077, China.

出版信息

Adv Mater. 2024 Sep;36(38):e2407034. doi: 10.1002/adma.202407034. Epub 2024 Jul 26.

DOI:10.1002/adma.202407034
PMID:39054932
Abstract

Decorating surfaces with wetting gradients or topological structures is a prevailing strategy to control uni-directional spreading without energy input. However, current methods, limited by fixed design, cannot achieve multi-directional control of liquids, posing challenges to practical applications. Here, a structured surface composed of arrayed three-dimensional asymmetric fang-structured units is reported that enable in situ control of customized multi-directional spreading for different surface tension liquids, exhibiting five novel modes. This is attributed to bottom-up distributed multi-curvature features of surface units, which create varied Laplace pressure gradients to guide the spreading of different-wettability liquids along specific directions. The surface's capability to respond to liquid properties for multimodal control leads to innovative functions that are absent in conventional structured surfaces. Selective multi-path circuits can be constructed by taking advantage of rich liquid behaviors with the surface; surface tensions of wetting liquids can be portably indicated with a resolution scope of 0.3-3.4 mN m using the surface; temperature-mediated change of liquid properties is utilized to smartly manipulate liquid behavior and achieve the spatiotemporal-controllable targeted cooling of the surface at its heated state. These novel applications open new avenues for developing advanced surfaces for liquid manipulation.

摘要

用润湿梯度或拓扑结构修饰表面是一种在无能量输入情况下控制单向铺展的常用策略。然而,目前的方法受固定设计限制,无法实现对液体的多向控制,给实际应用带来挑战。在此,报道了一种由排列的三维不对称 fang 结构单元组成的结构化表面,它能够对不同表面张力的液体进行定制多向铺展的原位控制,展现出五种新模式。这归因于表面单元自下而上的分布式多曲率特征,其产生不同的拉普拉斯压力梯度,以引导不同润湿性液体沿特定方向铺展。该表面对液体性质进行多模态控制的响应能力导致了传统结构化表面所没有的创新功能。利用该表面丰富的液体行为可构建选择性多路径电路;使用该表面可便携地指示润湿液体的表面张力,分辨率范围为 0.3 - 3.4 mN m;利用温度介导的液体性质变化来巧妙地操纵液体行为,并在表面处于加热状态时实现其时空可控的靶向冷却。这些新颖的应用为开发用于液体操纵的先进表面开辟了新途径。

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