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疏水柱体、孔隙及镂空柱体阵列上液滴后退接触角的统一模型

A unified model for droplet receding contact angles on hydrophobic pillar, pore, and hollowed pillar arrays.

作者信息

Jiang Youhua, Xiao Yilian

机构信息

Department of Mechanical Engineering (Robotics), Guangdong Technion - Israel Institute of Technology, Shantou, Guangdong 515063, China; Faculty of Mechanical Engineering, Technion - Israel Institute of Technology, Haifa 3200003, Israel.

Department of Mechanical Engineering (Robotics), Guangdong Technion - Israel Institute of Technology, Shantou, Guangdong 515063, China.

出版信息

J Colloid Interface Sci. 2025 Apr;683(Pt 2):869-876. doi: 10.1016/j.jcis.2024.12.215. Epub 2024 Dec 28.

Abstract

HYPOTHESIS

Current models for receding contact angles of Cassie-Baxter state droplets on textured hydrophobic substrates are applicable only to a specific structural type, e.g., pillar (above which a droplet has isolated contact line and continuous liquid-vapor interface) or pore (continuous contact line and isolated liquid-vapor interface), signifying a lack of universality. We conjecture that a unified model for droplet receding contact angles can be established if the fundamental gap between pillar and pore can be bridged.

EXPERIMENTS

Droplet receding contact angles on hollowed pillar (a pore inside a pillar) arrays, which possess the characteristics of both pillar and pore, are measured and compared to those on pillar and pore arrays. The microscopic dynamics of contact line and liquid-vapor interfaces on those substrates are also visualized.

FINDINGS

Droplets on hollowed pillar arrays exhibit smaller and larger contact angles than those on pillar and pore arrays, respectively. Based on microscopic energies involved in contact line sliding, relaxation of liquid-vapor interface between pillars, and extension of liquid-vapor interface above pores, a model is developed to predict the droplet receding contact angles irrespective of the variations in surface structural types (pillar, pore, and hollowed pillar) or dimensions (size, spacing, and packing density).

摘要

假设

目前关于Cassie-Baxter状态液滴在纹理化疏水基底上后退接触角的模型仅适用于特定的结构类型,例如柱体(液滴在其上方具有孤立的接触线和连续的液-气界面)或孔隙(连续的接触线和孤立的液-气界面),这表明缺乏通用性。我们推测,如果柱体和孔隙之间的基本差距能够弥合,就可以建立一个统一的液滴后退接触角模型。

实验

测量了中空柱体(柱体内有孔隙)阵列上液滴的后退接触角,该阵列兼具柱体和孔隙的特征,并与柱体阵列和孔隙阵列上的后退接触角进行比较。还可视化了这些基底上接触线和液-气界面的微观动力学。

发现

中空柱体阵列上的液滴分别比柱体阵列和孔隙阵列上的液滴表现出更小和更大的接触角。基于接触线滑动、柱体间液-气界面松弛以及孔隙上方液-气界面扩展所涉及的微观能量,开发了一个模型来预测液滴的后退接触角,而与表面结构类型(柱体、孔隙和中空柱体)或尺寸(大小、间距和堆积密度)的变化无关。

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