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Importance of moderate size of pillars and dual-scale structures for stable superhydrophobic surfaces: A molecular dynamics simulation study

机译:稳定超疏水表面柱子和双尺度结构的重要性:分子动力学模拟研究

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摘要

In this work, we first create three-dimensional molecular-dynamics (MD) model to study the effect of structure parameters including pillar size, pillar height, pillar groove, and intrinsic contact angle (theta(e), or Young's angle) on wetting behavior of drops on the one-scale nanopillared surface. We find that drops tend to exhibit the Cassie state on the nanopillared surface with small pillar size and large theta(e). Considering comprehensively the stability of the Cassie state, excellent hydrophobicity, and mechanical durability of microstructures, the pillar height and the pillar groove should be moderate. Then, only considering the wettability, we could see the dual-scale structure as the one-scale structure with large theta(e)* that results from the small-scale structure for increasing the B e and cannot be achieved on the smooth surface in experiments. Importantly, we observe that the dual-scale structure, corresponding to large theta(e)* resulting from the small-scale structure for increasing the theta(e), are important for the formation and the stability of the Cassie state. Moreover, the dual-scale structure can prevent the transition of drops from the Cassie state to the Wenzel state. Interestingly, fabricating the small-scale structure on top of the large-scale structure (corresponding to large theta(e)* of the one-scale structure) can facilitate the transformation of the Wenzel state of drops on the large-scale structure to the Cassie state, and the Cassie state is stable. This study provides an inspiration for the fabrication of stable artificial superhydrophobic surfaces.
机译:在这项工作中,我们首先创建三维分子动态(MD)模型来研究结构参数,包括支柱尺寸,支柱高度,柱槽和固有接触角(θ(e)或杨氏角度)的结构参数一尺寸纳米沥青表面上滴的行为。我们发现下降倾向于在纳米池表面上展示具有小柱尺寸和大θ(e)的纳米池表面上的卡西状态。全面地考虑Cassie状态,优异的疏水性和微观结构的机械耐久性,柱高度和柱槽的稳定性应适中。然后,只考虑润湿性,我们可以将双级结构视为具有大θ(e)*的单尺度结构,从小尺度结构增加了增加B e,不能在光滑的表面上实现实验。重要的是,我们观察到,对应于大型θ(e)*的双尺度结构,由小规模结构增加用于增加θ(e),对形成和Cassie状态的稳定性是重要的。此外,双尺度结构可以防止从卡西状态到温调状态的液滴的转变。有趣的是,在大规模结构的顶部制造小规模结构(对应于单尺度结构的大型θ(e)*)可以促进Wenzel状态的转变在大规模结构上卡西状态,卡西状态稳定。该研究提供了制备稳定的人工超疏水表面的灵感。

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