Nanoprobe Laboratory for Bio- & Nanotechnology and Biomimetics (NLB2), The Ohio State University, 201 West 19th Avenue, Columbus, Ohio 43210-1142, USA.
Langmuir. 2010 Mar 16;26(6):4013-7. doi: 10.1021/la903460a.
Liquid droplet sliding is an approach for the transportation and manipulation of fluids in micro/nanofluidics related biosensor applications. Liquid droplet sliding is also instructive to evaluate the degree of boundary slip. In this study, liquid microdroplet sliding is studied with and without the presence of an electric field using atomic force microscopy on a polystyrene surface spin coated on a doped silicon wafer with a silicon oxide coating. Droplets with different diameters are slid with an atomic force microscope tip, and the sliding forces or lateral friction forces are quantitatively measured. Experimental results show that lateral friction force linearly increases with increasing droplet diameters, which can be explained by a droplet sliding model. When the electric field is applied, in addition to the decreased contact angle, diameters of the liquid droplets will increase. As a result, the electric field increases lateral friction force. To further investigate the impact of applied potential on lateral friction force, voltages from 0 to 80 V are applied to a droplet. Lateral friction force is found to increase with applied potential.
液滴滑动是一种在微纳流控相关生物传感器应用中用于输送和操控流体的方法。液滴滑动对于评估边界滑移的程度也具有指导意义。在这项研究中,使用原子力显微镜在掺杂硅晶片上的聚苯乙烯表面上进行了有电场和无电场情况下的液滴滑动研究,该表面涂有氧化硅涂层。使用原子力显微镜探针滑动具有不同直径的液滴,并定量测量滑动力或横向摩擦力。实验结果表明,横向摩擦力随液滴直径的增加呈线性增加,这可以通过液滴滑动模型来解释。当施加电场时,除了接触角减小之外,液滴的直径也会增加。因此,电场会增加横向摩擦力。为了进一步研究施加的电势对横向摩擦力的影响,将 0 至 80 V 的电压施加到液滴上。发现横向摩擦力随施加的电势而增加。