Jiang Guo, Hu Jinhuan, Chen Liang
Key Laboratory of Polymer Processing Engineering, Ministry of Education, Key Laboratory of Technique and Equipment for Macromolecular Advanced Manufacturing, South China University of Technology, Guangzhou 510641, P.R. China.
Langmuir. 2020 Jul 28;36(29):8435-8443. doi: 10.1021/acs.langmuir.0c00823. Epub 2020 Jul 16.
Substrates of the superhydrophobic surface are important for their application. Preparation of a flexible superhydrophobic surface has drawn more and more attention. In this work, a flexible substrate was made using a semicuring spray method to obtain a flexible superhydrophobic surface with excellent abrasion resistance on the surface of a room temperature vulcanized silicone rubber. Results show that under a bending condition, excellent superhydrophobic properties are still maintained. The Cassie-Baxter model and Wenzel model can be used to estimate the static water contact angle for regular roughness surfaces. There are few numerical theoretical models to predict contact angle or wetting mode for irregular micronanostructures superhydrophobic surfaces. The fractal theory can be used to transform the equation of the Wenzel model and obtain the fractal wetting theory suitable for fractal structures on irregular rough surfaces. However, this fractal-wetting model cannot be applied to the Cassie-Baxter state, which is always suitable for superhydrophobic surfaces. A new method was developed to calculate the static water contact angle of water droplets in the Cassie-Baxter model state. Using image identification and the splitting surface method, a new model is constructed based on the fractal theory. Experimental data for water contact angles on the flexible superhydrophobic surface with SiC/CNTs micronanostructures is in agreement with the simulated values.
超疏水表面的基材对其应用很重要。柔性超疏水表面的制备越来越受到关注。在这项工作中,采用半固化喷涂法制作了一种柔性基材,以在室温硫化硅橡胶表面获得具有优异耐磨性的柔性超疏水表面。结果表明,在弯曲条件下,仍能保持优异的超疏水性能。Cassie - Baxter模型和Wenzel模型可用于估计规则粗糙度表面的静态水接触角。对于不规则的微米/纳米结构超疏水表面,很少有数值理论模型来预测接触角或润湿模式。分形理论可用于变换Wenzel模型的方程,得到适用于不规则粗糙表面上的分形结构的分形润湿理论。然而,这种分形润湿模型不能应用于总是适用于超疏水表面的Cassie - Baxter状态。开发了一种新方法来计算Cassie - Baxter模型状态下水滴的静态水接触角。利用图像识别和分裂表面法,基于分形理论构建了一个新模型。具有SiC/CNTs微米/纳米结构的柔性超疏水表面上的水接触角实验数据与模拟值一致。