Wu Xingyue, Tang Dongbao, He Qianpei, Liu Luxuan, Jia Zhaoyuan, Tan Yuyu
School of Electrical Engineering, Ultra-fast/Micro-nano Technology and Advanced Laser Manufacturing Key Laboratory of Hunan Province, University of South China Hengyang 421001 China
Department of Comparative Medicine, School of Medicine, University of Washington Seattle WA USA.
RSC Adv. 2023 Jun 5;13(25):16815-16827. doi: 10.1039/d3ra01817b.
Digital microfluidics (DMF) is an innovative technology used for precise manipulation of liquid droplets. This technology has garnered significant attention in both industrial applications and scientific research due to its unique advantages. Among the key components of DMF, the driving electrode plays a role in facilitating droplet generation, transportation, splitting, merging, and mixing. This comprehensive review aims to present an in-depth understanding of the working principle of DMF particularly focusing on the Electrowetting On Dielectric (EWOD) method. Furthermore, it examines the impact of driving electrodes with varying geometries on droplet manipulation. By analyzing and comparing their characteristics, this review offers valuable insights and a fresh perspective on the design and application of driving electrodes in DMF based on the EWOD approach. Lastly, an assessment of the development trend and potential applications of DMF concludes the review, providing an outlook for future prospects in the field.
数字微流控(DMF)是一种用于精确操控液滴的创新技术。由于其独特优势,该技术在工业应用和科学研究中都备受关注。在数字微流控的关键组件中,驱动电极在促进液滴的产生、运输、分裂、合并和混合方面发挥着作用。这篇综述旨在深入理解数字微流控的工作原理,尤其侧重于介电电泳(EWOD)方法。此外,它还研究了不同几何形状的驱动电极对液滴操控的影响。通过分析和比较它们的特性,本综述基于EWOD方法为数字微流控中驱动电极的设计和应用提供了有价值的见解和全新视角。最后,对数字微流控的发展趋势和潜在应用进行评估,总结了该综述,为该领域的未来前景提供了展望。