Phillips Katherine R, Vogel Nicolas, Burgess Ian B, Perry Carole C, Aizenberg Joanna
Department of Chemistry and Chemical Biology, ‡School of Engineering and Applied Sciences, and ∥Wyss Institute for Biologically Inspired Engineering, Harvard University , Cambridge, Massachusetts 02138, United States.
Langmuir. 2014 Jul 1;30(25):7615-20. doi: 10.1021/la5015253. Epub 2014 Jun 18.
Porous materials display interesting transport phenomena due to restricted motion of fluids within the nano- to microscale voids. Here, we investigate how liquid wetting in highly ordered inverse opals is affected by anisotropy in pore geometry. We compare samples with different degrees of pore asphericity and find different wetting patterns depending on the pore shape. Highly anisotropic structures are infiltrated more easily than their isotropic counterparts. Further, the wetting of anisotropic inverse opals is directional, with liquids filling from the side more easily. This effect is supported by percolation simulations as well as direct observations of wetting using time-resolved optical microscopy.
由于流体在纳米到微米尺度孔隙内的受限运动,多孔材料呈现出有趣的传输现象。在此,我们研究高度有序反蛋白石中的液体润湿性如何受到孔隙几何形状各向异性的影响。我们比较了具有不同程度孔隙非球度的样品,发现根据孔隙形状存在不同的润湿性模式。高度各向异性的结构比其各向同性对应物更容易被渗透。此外,各向异性反蛋白石的润湿性是有方向性的,液体从侧面填充更容易。渗流模拟以及使用时间分辨光学显微镜对润湿性的直接观察都证实了这一效应。