Wei Qiuxu, Yao Wenliang, Gu Le, Fan Bolin, Gao Yongjia, Yang Li, Zhao Yingying, Che Chuncheng
Biomicrofluidics. 2021 Feb 1;15(1):014107. doi: 10.1063/5.0029790. eCollection 2021 Jan.
With widespread research studies on electrowetting-on-dielectric (EWOD) for droplet manipulation in the field of lab-on-a-chip, how to improve the driving capability of droplets has increasingly attracted enormous interest. Aiming to decrease driving voltages and improve driving effectiveness, this paper studies the modeling, simulation, and optimization of EWOD devices. The theoretical model is refined mainly in consideration of the saturation effect of the contact angle and then verified by both simulation and experiments. As a design guide to decrease the driving voltage, a theoretical criterion of droplet splitting, the most difficult one among four basic droplet manipulations, is developed and then verified by experimental results. Moreover, a novel sigmoid electrode shape is found by the optimization method based on finite element analysis and achieves better driving effectiveness and consistent bidirectional driving capability, compared with the existing electrode shapes. Taken together, this paper provides an EWOD analysis and optimization method featuring a lower voltage and a better effectiveness and opens up opportunities for optimization designs in various EWOD-based applications.
随着微流控芯片领域中用于液滴操控的介电电泳(EWOD)研究广泛开展,如何提高液滴驱动能力越来越受到广泛关注。为了降低驱动电压并提高驱动效率,本文对EWOD器件进行了建模、仿真和优化研究。理论模型主要考虑接触角的饱和效应进行了完善,并通过仿真和实验进行了验证。作为降低驱动电压的设计指南,推导了液滴分裂(四种基本液滴操控中最难的一种)的理论准则,并通过实验结果进行了验证。此外,基于有限元分析的优化方法发现了一种新型的S形电极形状,与现有电极形状相比,具有更好的驱动效率和一致的双向驱动能力。综上所述,本文提供了一种具有更低电压和更高效率的EWOD分析与优化方法,为各种基于EWOD的应用的优化设计开辟了道路。