De Souza E J, Brinkmann M, Mohrdieck C, Arzt E
Max Planck Institute for Metals Research, Heisenbergstr. 3, Stuttgart, Germany.
Langmuir. 2008 Aug 19;24(16):8813-20. doi: 10.1021/la8005376. Epub 2008 Jul 23.
Capillary forces can significantly contribute to the adhesion of biological and artificial micro- and nanoscale objects. In this paper, we study numerically the effect of meniscus size on the force between two homogeneous flat plates for different contact angles. The force distance curves show excellent quantitative agreement with previous investigations. The results for n menisci of equal total liquid volume reveal interesting scaling properties and an unexpected maximum force for moderately hydrophilic surfaces (i.e., contact angles around 70 degrees ). Further, we calculate the minimum solid-liquid area for multiple bridges, the cohesive stress (i.e., force per area) between the plates, and the work required to separate them. The results are presented in two-dimensional maps, which may be useful in the understanding of biological attachment structures and in the design of artificial contact systems.
毛细作用力对生物及人工微纳尺度物体的粘附有着显著影响。在本文中,我们通过数值模拟研究了不同接触角下弯月面尺寸对两个均质平板间作用力的影响。力-距离曲线与先前的研究结果在定量上吻合得非常好。对于总液体体积相等的n个弯月面,研究结果揭示了有趣的标度性质,以及在中等亲水性表面(即接触角约为70度)出现的意外最大力。此外,我们计算了多个桥接的最小固液面积、平板间的内聚应力(即单位面积的力)以及将它们分开所需的功。结果以二维图的形式呈现,这可能有助于理解生物附着结构以及设计人工接触系统。