Kajouri Russell, Theodorakis Panagiotis E, Židek Jan, Milchev Andrey
Institute of Physics, Polish Academy of Sciences, Al. Lotników 32/46, 02-668 Warsaw, Poland.
Central European Institute of Technology, Brno University of Technology, Purkyňova 656/123, 612 00 Brno, Czech Republic.
Langmuir. 2023 Oct 31;39(43):15285-15296. doi: 10.1021/acs.langmuir.3c01999. Epub 2023 Sep 6.
Durotaxis motion is a spectacular phenomenon manifesting itself by the autonomous motion of a nano-object between parts of a substrate with different stiffness. This motion usually takes place along a stiffness gradient from softer to stiffer parts of the substrate. Here, we propose a new design of a polymer brush substrate that demonstrates antidurotaxis droplet motion, that is, droplet motion from stiffer to softer parts of the substrate. By carrying out extensive molecular dynamics simulation of a coarse-grained model, we find that antidurotaxis is solely controlled by the gradient in the grafting density of the brush and is favorable for fluids with a strong attraction to the substrate (low surface energy). The driving force of the antidurotaxial motion is the minimization of the droplet-substrate interfacial energy, which is attributed to the penetration of the droplet into the brush. Thus, we anticipate that the proposed substrate design offers a new understanding and possibilities in the area of autonomous motion of droplets for applications in microfluidics, energy conservation, and biology.
硬度诱导运动是一种引人注目的现象,表现为纳米物体在具有不同硬度的基底部分之间的自主运动。这种运动通常沿着基底从较软部分到较硬部分的硬度梯度发生。在这里,我们提出了一种聚合物刷基底的新设计,该设计展示了反向硬度诱导液滴运动,即液滴从基底较硬部分向较软部分的运动。通过对一个粗粒化模型进行广泛的分子动力学模拟,我们发现反向硬度诱导运动仅由刷的接枝密度梯度控制,并且有利于对基底具有强吸引力(低表面能)的流体。反向硬度诱导运动的驱动力是液滴 - 基底界面能的最小化,这归因于液滴向刷中的渗透。因此,我们预计所提出的基底设计为微流体、能量守恒和生物学应用中液滴自主运动领域提供了新的理解和可能性。