Yang Ya-Tang, Ho Tsung-Yi
Department of Electrical Engineering, National Tsing Hua University, Hsinchu, Taiwan.
Department of Computer Science, National Tsing Hua University, Hsinchu, Taiwan.
Front Chem. 2021 May 26;9:676365. doi: 10.3389/fchem.2021.676365. eCollection 2021.
The development of large-scale integration based on soft lithography has ushered a new revolution in microfluidics. This technology, however, relies inherently on pneumatic control of micromechanical valves that require air pressure to operate, while digital microfluidics uses a purely electrical signal on an electrode for droplet manipulation. In this article, we discuss the prospect and current challenges of digital microfluidics to solve the problem of the tyranny of numbers in arbitrary fluidic manipulation. We distill the fundamental physics governing electrowetting and their implications for specifications of the control electronics. We survey existing control electronics in digital microfluidics and detail the improvements needed to realize a low-power, programmable digital microfluidic system. Such an instrument would attract wide interest in both professional and non-professional (hobbyist) communities.
基于软光刻的大规模集成技术发展为微流控领域带来了一场新的革命。然而,这项技术本质上依赖于对微机械阀的气动控制,这些阀需要气压来操作,而数字微流控则在电极上使用纯电信号来操控液滴。在本文中,我们讨论了数字微流控在解决任意流体操控中数字难题方面的前景和当前面临的挑战。我们提炼了控制电润湿的基本物理原理及其对控制电子设备规格的影响。我们调研了数字微流控中现有的控制电子设备,并详细说明了实现低功耗、可编程数字微流控系统所需的改进。这样一种仪器将在专业和非专业(爱好者)群体中引起广泛关注。