Badr Rodrique G M, Hauer Lukas, Vollmer Doris, Schmid Friederike
Institut für Physik, Johannes Gutenberg-Universität Mainz, Staudingerweg 7-9, D-55099 Mainz, Germany.
Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.
Langmuir. 2024 Jun 18;40(24):12368-12380. doi: 10.1021/acs.langmuir.4c00400. Epub 2024 Jun 4.
Understanding the dynamics of drops on polymer-coated surfaces is crucial for optimizing applications such as self-cleaning materials or microfluidic devices. While the static and dynamic properties of deposited drops have been well characterized, a microscopic understanding of the underlying dynamics is missing. In particular, it is unclear how drop dynamics depends on the amount of uncross-linked chains in the brush, because experimental techniques fail to quantify those. Here we use coarse-grained simulations to study droplets moving on a lubricated polymer brush substrate under the influence of an external body force. The simulation model is based on the many body dissipative particle dynamics (MDPD) method and designed to mimic a system of water droplets on poly(dimethylsiloxane) (PDMS) brushes with chemically identical PDMS lubricant. In agreement with experiments, we find a sublinear power law dependence between the external force and the droplet velocity , ∝ with α < 1; however, the exponents differ (α ∼ 0.6-0.7 in simulations versus α ∼ 0.25 in experiments). With increasing velocity, the droplets elongate and the receding contact angle decreases, whereas the advancing contact angle remains roughly constant. Analyzing the flow profiles inside the droplet reveals that the droplets do not slide but roll, with vanishing slip at the substrate surface. Surprisingly, adding lubricant has very little effect on the effective friction force between the droplet and the substrate, even though it has a pronounced effect on the size and structure of the wetting ridge, especially above the cloaking transition.
了解聚合物涂层表面上液滴的动力学对于优化诸如自清洁材料或微流控装置等应用至关重要。虽然沉积液滴的静态和动态特性已得到充分表征,但对其潜在动力学的微观理解仍缺失。特别是,尚不清楚液滴动力学如何取决于刷中未交联链的数量,因为实验技术无法对这些进行量化。在此,我们使用粗粒化模拟来研究在外部体力影响下在润滑聚合物刷基底上移动的液滴。模拟模型基于多体耗散粒子动力学(MDPD)方法,旨在模拟聚二甲基硅氧烷(PDMS)刷上带有化学性质相同的PDMS润滑剂的水滴系统。与实验一致,我们发现外力与液滴速度之间存在亚线性幂律依赖关系,即 ∝ ,其中α < 1;然而,指数不同(模拟中α ∼ 0.6 - 0.7,而实验中α ∼ 0.25)。随着速度增加,液滴拉长且后退接触角减小,而前进接触角大致保持恒定。对液滴内部流动剖面的分析表明,液滴不是滑动而是滚动,在基底表面的滑移消失。令人惊讶的是,添加润滑剂对液滴与基底之间的有效摩擦力影响很小,尽管它对润湿脊的尺寸和结构有显著影响,特别是在隐身转变之上。