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用于超疏水性的图案化表面的润湿性研究。

Wetting study of patterned surfaces for superhydrophobicity.

作者信息

Bhushan Bharat, Chae Jung Yong

机构信息

Nanotribology Laboratory for Information Storage and MEMS/NEMS (NLIM), 201 W. 19th Avenue, The Ohio State University, Columbus, OH 43202-1107, USA.

出版信息

Ultramicroscopy. 2007 Oct;107(10-11):1033-41. doi: 10.1016/j.ultramic.2007.05.002. Epub 2007 May 8.

Abstract

Superhydrophobic surfaces have considerable technological potential for various applications due to their extreme water-repellent properties. A number of studies have been carried out to produce artificial biomimetic roughness-induced hydrophobic surfaces. In general, both homogeneous and composite interfaces are possible on the produced surface. Silicon surfaces patterned with pillars of two different diameters and heights with varying pitch values were fabricated. We show how static contact angles vary with different pitch values on the patterned silicon surfaces. Based on the experimental data and a numerical model, the trends are explained. We show that superhydrophobic surfaces have low hysteresis and tilt angle. Tribological properties play an important role in many applications requiring water-repellent properties. Therefore, it is important to study the adhesion and friction properties of these surfaces that mimic nature. An atomic/friction force microscope (AFM/FFM) is used for surface characterization and adhesion and friction measurements.

摘要

超疏水表面因其极强的拒水性能而在各种应用中具有相当大的技术潜力。已经开展了多项研究来制造人工仿生粗糙度诱导的疏水表面。一般来说,在制造的表面上,均匀界面和复合界面都是可能的。制造了具有两种不同直径、高度且间距值不同的柱状图案化硅表面。我们展示了在图案化硅表面上静态接触角如何随不同的间距值而变化。基于实验数据和数值模型,对这些趋势进行了解释。我们表明超疏水表面具有低滞后性和倾斜角。摩擦学性能在许多需要拒水性能的应用中起着重要作用。因此,研究这些模仿自然的表面的粘附和摩擦性能很重要。原子力显微镜/摩擦力显微镜(AFM/FFM)用于表面表征以及粘附和摩擦测量。

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