环境中自我维持的三维液体薄膜

R. Camacho, D. Fish, M. Simmons, Parker Awerkamp, R. Anderson, S. Carlson, Joshua Laney, Matthew Viglione, G. Nordin
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引用次数: 1

摘要

从细胞膜的热力学到轻水冷却核反应堆的安全性,薄液体膜(TLF)具有重要的基础和技术意义。然而,创造稳定的水tlf是非常困难的。在本文中,实现了具有自定义三维几何形状的水薄膜,该薄膜在环境中无限期地持续存在。湿膜是由微流体通道提供的微尺度“支架”产生的,具有小的特征尺寸和大的宽高比。这些装置是用定制的3D打印机和树脂制造的,开发用于打印高分辨率微流体几何形状,详见参考文献26。通过将3d打印聚合物修饰成亲水性,并利用众所周知的润湿原理和毛细效应,构建了自我维持的微型“喷泉”,可以不断补充蒸发损失的水分,同时依靠表面张力稳定其形状。据作者所知,这是首次在弯曲的三维几何形状上展示稳定的亚微米纯水薄液体膜(tlf)。
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Self-sustaining 3-Dimensional Thin Liquid Films in Ambient Environments
Thin liquid films (TLF) have fundamental and technological importance ranging from the thermodynamics of cell membranes to the safety of light-water cooled nuclear reactors. The creation of stable water TLFs, however, is very difficult. In this paper, the realization of thin liquid films of water with custom 3D geometries that persist indefinitely in ambient environments is reported. The wetting films are generated using microscale “mounts” fed by microfluidic channels with small feature sizes and large aspect ratios. These devices are fabricated with a custom 3D printer and resin, which were developed to print high resolution microfluidic geometries as detailed in Reference 26. By modifying the 3D-printed polymer to be hydrophilic and taking advantage of well-known wetting principles and capillary effects, self-sustaining microscale “water fountains” are constructed that continuously replenish water lost to evaporation while relying on surface tension to stabilize their shape. To the authors' knowledge, this is the first demonstration of stable sub-micron thin liquid films (TLFs) of pure water on curved 3D geometries.
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