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使用超疏水镊子在非连续图案化超疏水表面上按需产生运输气泡

On-Demand Transport Bubbles Adhering to Noncontiguous Patterned Superhydrophobic Surfaces Using a Superhydrophobic Tweezer.

作者信息

Zheng Jingyi, Tu Chengxu, Du Pengfei, Chen Ji, Li Yichen, Gao Shanqing, Lin Jianzhong, Bao Fubing

机构信息

Zhejiang Provincial Key Laboratory of Flow Measurement Technology, China Jiliang University, Hangzhou 310018, China.

Key Laboratory of Impact and Safety Engineering (Ningbo University), Ministry of Education, Ningbo 315201, China.

出版信息

Langmuir. 2024 Jul 23;40(29):15322-15331. doi: 10.1021/acs.langmuir.4c02063. Epub 2024 Jul 9.

Abstract

Bubble transportation and related flotation are ubiquitous phenomena in nature and industry. Various surfaces with distinct morphologies and specific wettability properties have been engineered by organisms in nature and by humans to facilitate the targeted movement of bubbles. However, existing methods predominantly rely on continuous surfaces, limiting the ability of bubbles to deviate from their path before reaching their intended destination. Therefore, directional transportation of bubbles using noncontiguous surfaces still remains a significant challenge. Inspired by water spiders' ability to capture bubbles underwater using their hydrophobic surface for survival, we propose a novel transport strategy that utilizes patterned superhydrophobic surfaces (PSHSs) and a superhydrophobic tweezer. This strategy is implemented by switching between the hood mode and puncture mode of the moving three-phase contact lines to load and unload the bubble. To quantitatively evaluate the loss ratio of the bubble during transportation, a simple and exquisite bubble-weighing apparatus is devised. Our findings indicate that circular PSHSs demonstrate superior bubble adhesion and achieve the highest bubble transport ratio of 95.1%. In order to validate the promising application of this novel method, we employ the computer numerical control (CNC) technology to facilitate the autonomous loading and precise transportation of underwater bubbles, as well as the blending and ionization of combustible gas bubbles with air bubbles at different volume ratios.

摘要

气泡运输及相关浮选是自然界和工业中普遍存在的现象。自然界中的生物体以及人类已经设计出了各种具有不同形态和特定润湿性的表面,以促进气泡的定向移动。然而,现有方法主要依赖于连续表面,限制了气泡在到达预定目的地之前偏离其路径的能力。因此,利用非连续表面进行气泡的定向运输仍然是一项重大挑战。受水蜘蛛利用其疏水表面在水下捕获气泡以生存的能力启发,我们提出了一种新颖的运输策略,该策略利用图案化超疏水表面(PSHSs)和超疏水镊子。这种策略通过移动三相接触线的罩模式和穿刺模式之间的切换来加载和卸载气泡。为了定量评估运输过程中气泡的损失率,设计了一种简单而精巧的气泡称重装置。我们的研究结果表明,圆形PSHSs表现出卓越的气泡附着力,实现了95.1%的最高气泡运输率。为了验证这种新方法的应用前景,我们采用计算机数控(CNC)技术来促进水下气泡的自动加载和精确运输,以及可燃气泡与不同体积比的空气泡的混合和电离。

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