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All-electronic Droplet Generation On-chip with Real-time Feedback Control for EWOD Digital Microfluidics

Overview
Journal Lab Chip
Specialties Biotechnology
Chemistry
Date 2008 May 24
PMID 18497909
Citations 38
Authors
Affiliations
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Abstract

Electrowetting-on-dielectric (EWOD) actuation enables digital (or droplet) microfluidics where small packets of liquids are manipulated on a two-dimensional surface. Due to its mechanical simplicity and low energy consumption, EWOD holds particular promise for portable systems. To improve volume precision of the droplets, which is desired for quantitative applications such as biochemical assays, existing practices would require near-perfect device fabrication and operation conditions unless the droplets are generated under feedback control by an extra pump setup off of the chip. In this paper, we develop an all-electronic (i.e., no ancillary pumping) real-time feedback control of on-chip droplet generation. A fast voltage modulation, capacitance sensing, and discrete-time PID feedback controller are integrated on the operating electronic board. A significant improvement is obtained in the droplet volume uniformity, compared with an open loop control as well as the previous feedback control employing an external pump. Furthermore, this new capability empowers users to prescribe the droplet volume even below the previously considered minimum, allowing, for example, 1 : x (x < 1) mixing, in comparison to the previously considered n : m mixing (i.e., n and m unit droplets).

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References
1.
Chaudhury M, Whitesides G . How to make water run uphill. Science. 1992; 256(5063):1539-41. DOI: 10.1126/science.256.5063.1539. View

2.
Gong J, Kim C . Direct-referencing Two-dimensional-array Digital Microfluidics Using Multi-layer Printed Circuit Board. J Microelectromech Syst. 2009; 17(2):257-264. PMC: 2645069. DOI: 10.1109/JMEMS.2007.912698. View

3.
CONSTANTIN , DUPONT , GOLDSTEIN , Kadanoff , Shelley , Zhou . Droplet breakup in a model of the Hele-Shaw cell. Phys Rev E Stat Phys Plasmas Fluids Relat Interdiscip Topics. 1993; 47(6):4169-4181. DOI: 10.1103/physreve.47.4169. View

4.
Garstecki P, Fuerstman M, Stone H, Whitesides G . Formation of droplets and bubbles in a microfluidic T-junction-scaling and mechanism of break-up. Lab Chip. 2006; 6(3):437-46. DOI: 10.1039/b510841a. View

5.
Easley C, Karlinsey J, Bienvenue J, Legendre L, Roper M, Feldman S . A fully integrated microfluidic genetic analysis system with sample-in-answer-out capability. Proc Natl Acad Sci U S A. 2006; 103(51):19272-7. PMC: 1748216. DOI: 10.1073/pnas.0604663103. View