Wang FengChao, Wu HengAn
CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China, Hefei, Anhui 230027 People's Republic of China.
Sci Rep. 2015 Dec 2;5:17521. doi: 10.1038/srep17521.
Understanding and controlling the motion of the contact line is of critical importance for surface science studies as well as many industrial engineering applications. In this work, we elucidate the molecular origin of contact line stick-slip motion during the evaporation of liquid droplets on flexible nano-pillared surfaces using molecular dynamics simulations. We demonstrate that the evaporation-induced stick-slip motion of the contact line is a consequence of competition between pinning and depinning forces. Furthermore, the tangential force exerted by the pillared substrate on the contact line was observed to have a sawtooth-like oscillation. Our analysis also establishes that variations in the pinning force are accomplished through the self-adaptation of solid-liquid intermolecular distances, especially for liquid molecules sitting directly on top of the solid pillar. Consistent with our theoretical analysis, molecular dynamics simulations also show that the maximum pinning force is quantitatively related to both solid-liquid adhesion strength and liquid-vapor surface tension. These observations provide a fundamental understanding of contact line stick-slip motion on pillared substrates and also give insight into the microscopic interpretations of contact angle hysteresis, wetting transitions and dynamic spreading.
理解和控制接触线的运动对于表面科学研究以及许多工业工程应用至关重要。在这项工作中,我们使用分子动力学模拟阐明了柔性纳米柱表面上液滴蒸发过程中接触线粘滑运动的分子起源。我们证明,接触线的蒸发诱导粘滑运动是钉扎力和脱钉力之间竞争的结果。此外,观察到柱状基底对接触线施加的切向力具有锯齿状振荡。我们的分析还确定,钉扎力的变化是通过固液分子间距离的自适应实现的,特别是对于直接位于固体柱顶部的液体分子。与我们的理论分析一致,分子动力学模拟还表明,最大钉扎力与固液粘附强度和液气表面张力都存在定量关系。这些观察结果为柱状基底上接触线的粘滑运动提供了基本理解,也为接触角滞后、润湿转变和动态铺展的微观解释提供了见解。