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纳米尺度下的润湿性:接触线力诱导的分子迁移率

Wetting at the Nanoscale: Molecular Mobility Induced by Contact Line Forces.

作者信息

Franiatte Sylvain, Tordjeman Philippe, Ondarçuhu Thierry

机构信息

Institut de Mécanique des Fluides de Toulouse (IMFT), Université de Toulouse, CNRS, 2 Allée du Professeur Camille Soula, 31400 Toulouse, France.

出版信息

Langmuir. 2022 Mar 1;38(8):2614-2625. doi: 10.1021/acs.langmuir.1c03292. Epub 2022 Feb 15.

Abstract

In this paper, we study the interaction of a contact line with molecules physically adsorbed on a surface. We developed specific atomic force microscopy (AFM) experiments where a nanoneedle attached at the extremity of the cantilever is dipped in a liquid droplet. The motion of the contact line at the extremity of the meniscus formed depends on the presence of topographical and chemical defects at the surface of the nanoneedle. The analysis of the force measured by AFM based on a capillary model allows one to distinguish the effects of topographical and chemical defects and to monitor minute changes of surface properties. Using six different liquids and five tips, we show that the change of the surface properties of one nanoneedle results either from the adsorption of airborne molecules when the tip is left in the air or from their desorption by the moving contact line when the tip is repeatedly dipped in the liquid. The desorption rate is found to depend only on the number of dipping cycles and is not influenced by the velocity or the liquid properties. A model based on the estimation of capillary and adsorption energies confirms a capillary desorption mechanism in agreement with the experimental results. Finally, we demonstrate that three distinct desorption mechanisms may be at play. Interestingly, using a deliberate contamination with large hydrocarbon molecules, we show that the capillary desorption studied in this paper can be used to clean surfaces.

摘要

在本文中,我们研究了接触线与物理吸附在表面的分子之间的相互作用。我们开展了特定的原子力显微镜(AFM)实验,将附着在悬臂末端的纳米针浸入液滴中。在形成的弯月面末端处接触线的运动取决于纳米针表面的形貌和化学缺陷的存在情况。基于毛细管模型对AFM测量力进行分析,能够区分形貌和化学缺陷的影响,并监测表面性质的微小变化。使用六种不同的液体和五个探针,我们表明,一根纳米针表面性质的变化要么源于探针置于空气中时空气传播分子的吸附,要么源于探针反复浸入液体时移动接触线导致的这些分子的解吸。发现解吸速率仅取决于浸入循环次数,不受速度或液体性质的影响。基于毛细管和吸附能估算的模型证实了与实验结果相符的毛细管解吸机制。最后,我们证明可能存在三种不同的解吸机制。有趣的是,通过故意用大的烃类分子进行污染,我们表明本文所研究的毛细管解吸可用于清洁表面。

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