4.2 Article

Machine vision-based driving and feedback scheme for digital microfluidics system

期刊

OPEN CHEMISTRY
卷 19, 期 1, 页码 665-677

出版社

DE GRUYTER POLAND SP Z O O
DOI: 10.1515/chem-2021-0060

关键词

digital microfluidics system; electrowetting-on-dielectric; machine vision; position; feedback

资金

  1. National Natural Science Foundation of China [61871475]
  2. Guangdong Science and Technology Plan [201905010006]
  3. Foundation for High-level Talents in Higher Education of Guangdong Province [2017KQNCX097, 2018LM2168]
  4. Guangzhou Science Research Plan [201904010233]

向作者/读者索取更多资源

Feedback control schemes are necessary to ensure the reliability and accuracy of digital microfluidic systems. The key to feedback is to obtain accurate droplet position information. A driving and feedback scheme based on machine vision is proposed in this article, which has been validated through a series of experiments to improve the success rate of different applications.
A digital microfluidic system based on electrowetting-on-dielectric is a new technology for controlling microliter-sized droplets on a plane. By applying a voltage signal to an electrode, the droplets can be controlled to move, merge, and split. Due to device design, fabrication, and runtime uncertainties, feedback control schemes are necessary to ensure the reliability and accuracy of a digital microfluidic system for practical application. The premise of feedback is to obtain accurate droplet position information. Therefore, there is a strong need to develop a digital microfluidics system integrated with driving, position, and feedback functions for different areas of study. In this article, we propose a driving and feedback scheme based on machine vision for the digital microfluidics system. A series of experiments including droplet motion, merging, status detection, and self-adaption are performed to evaluate the feasibility and the reliability of the proposed scheme. The experimental results show that the proposed scheme can accurately locate multiple droplets and improve the success rate of different applications. Furthermore, the proposed scheme provides an experimental platform for scientists who focused on the digital microfluidics system.

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