Guo Lin, Tang G H, Kumar Satish
MOE Key Laboratory of Thermo-Fluid Science and Engineering, School of Energy and Power Engineering , Xi'an Jiaotong University , Xi'an 710049 , P.R. China.
G. W. Woodruff School of Mechanical Engineering , Georgia Institute of Technology , Atlanta , Georgia 30332 , United States.
Langmuir. 2019 Dec 10;35(49):16377-16387. doi: 10.1021/acs.langmuir.9b02603. Epub 2019 Nov 21.
Slippery liquid-infused porous surfaces (SLIPS) are gaining remarkable attention and have advanced performance in many fields. Although all SLIPS are related to lubricant-impregnation within nano/microstructures on a surface, they differ in many aspects, such as the morphology of droplets, the state of cloaking, the wetting edge, and the lubricant thickness. Requirements of the droplet morphology on SLIPS might change according to a specific application. A molecular-dynamics-based numerical model that can correctly simulate SLIPS is developed and is validated by comparing against the theoretical predictions for all possible stable states for a given droplet, lubricant, and solid surface. On the basis of this model, a detailed analysis of the equilibrium states is conducted. In particular, we discover that the four possible stable states on SLIPS predicted by theoretical studies can be extended to eight states by considering the effects of lubricant thickness and surface geometry in addition to the interfacial tension and surface wettability. These findings could be used to determine the conditions under which a thermodynamically stable state exists on SLIPS. The dynamic behavior of a nanodroplet on SLIPS is also studied, which provides insight into how a proper increase in the lubricant thickness might increase the sliding velocity. The above findings and developed model are expected to provide significant guidelines for designing SLIPS.
注入滑液的多孔表面(SLIPS)正受到广泛关注,并在许多领域展现出卓越性能。尽管所有SLIPS都与表面纳米/微观结构中的润滑剂浸渍有关,但它们在许多方面存在差异,如液滴形态、隐形状态、润湿边缘和润滑剂厚度等。SLIPS上液滴形态的要求可能会根据具体应用而变化。我们开发了一个基于分子动力学的数值模型,该模型能够正确模拟SLIPS,并通过与给定液滴、润滑剂和固体表面所有可能稳定状态的理论预测进行比较来验证。基于该模型,我们对平衡状态进行了详细分析。特别是,我们发现,除了界面张力和表面润湿性外,考虑润滑剂厚度和表面几何形状的影响后,理论研究预测的SLIPS上四种可能的稳定状态可扩展为八种状态。这些发现可用于确定SLIPS上存在热力学稳定状态的条件。我们还研究了纳米液滴在SLIPS上的动态行为,这有助于深入了解适当增加润滑剂厚度如何提高滑动速度。上述发现和开发的模型有望为SLIPS的设计提供重要指导。