电润湿
微尺度化学
电压
接触角
微流控
表面光洁度
机械
能量最小化
表面粗糙度
电场
电介质
工作(物理)
材料科学
纳米技术
化学
物理
机械工程
光电子学
工程类
电气工程
复合材料
数学
计算化学
数学教育
量子力学
作者
Vaibhav Bahadur,Suresh V. Garimella
出处
期刊:Langmuir
[American Chemical Society]
日期:2007-03-21
卷期号:23 (9): 4918-4924
被引量:122
摘要
Electrowetting (EW) is a powerful tool to control fluid motion at the microscale and has promising applications in the field of microfluidics. The present work analyzes the influence of an electrowetting voltage in determining and altering the state of a static droplet resting on a rough surface. An energy-minimization-based modeling approach is used to analyze the influence of interfacial energies, surface roughness parameters, and electric fields in determining the apparent contact angle of a droplet in the Cassie and Wenzel states under the influence of an EW voltage. The energy-minimization-based approach is also used to analyze the Cassie-Wenzel transition under the influence of an EW voltage and estimate the energy barrier to transition. The results obtained show that EW is a powerful tool to alter the relative stabilities of the Cassie and Wenzel states and enable dynamic control of droplet morphology on rough surfaces. The versatility and generalized nature of the present modeling approach is highlighted by application to the prediction of the contact angle of a droplet on an electrowetted rough surface consisting of a dielectric layer of nonuniform thickness.
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