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Journal ArticleDOI

Creating, transporting, cutting, and merging liquid droplets by electrowetting-based actuation for digital microfluidic circuits

TLDR
In this paper, the authors report the completion of four fundamental fluidic operations considered essential to build digital microfluidic circuits, which can be used for lab-on-a-chip or micro total analysis system (/spl mu/TAS): 1) creating, 2) transporting, 3) cutting, and 4) merging liquid droplets, all by electrowetting.
Abstract
Reports the completion of four fundamental fluidic operations considered essential to build digital microfluidic circuits, which can be used for lab-on-a-chip or micro total analysis system (/spl mu/TAS): 1) creating, 2) transporting, 3) cutting, and 4) merging liquid droplets, all by electrowetting, i.e., controlling the wetting property of the surface through electric potential. The surface used in this report is, more specifically, an electrode covered with dielectrics, hence, called electrowetting-on-dielectric (EWOD). All the fluidic movement is confined between two plates, which we call parallel-plate channel, rather than through closed channels or on open surfaces. While transporting and merging droplets are easily verified, we discover that there exists a design criterion for a given set of materials beyond which the droplet simply cannot be cut by EWOD mechanism. The condition for successful cutting is theoretically analyzed by examining the channel gap, the droplet size and the degree of contact angle change by electrowetting on dielectric (EWOD). A series of experiments is run and verifies the criterion.

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Citations
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Modeling microdrop motion between covered and open regions of EWOD microsystems

TL;DR: In this article, a dual open/covered system is proposed to combine the advantages of the two systems, and the mechanism of motion between a covered and open region is analyzed by using a numerical model based on energy minimization.
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Surface Micro-Profiling for Reduced Energy Dissipation and Exergy Loss in Convective Heat Transfer

TL;DR: In this paper, the role of slip conditions within surface-embedded microchannels for reducing entropy production of external flows with convective heat transfer was examined, and the benefits of drag reduction due to the slip-flow conditions can outweigh the higher irreversibility arising from added microchannel area.
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TL;DR: In this article, an annular core microstructured optical fiber is used to trap a liquid droplet in a special frustum cone shape and the axial and transverse optical trapping forces are simulated.

Manipulation of magnetic microparticles in liquid phases for on-chip biomedical analysis methods

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Electric Controlled Micro-Fluidic Device

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References
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Fundamentals of microfabrication

TL;DR: The second edition of the Fundamentals of Microfabrication as discussed by the authors provides an in-depth coverage of the science of miniaturization, its methods, and materials, from the fundamentals of lithography through bonding and packaging to quantum structures and molecular engineering.
Journal ArticleDOI

Electrowetting-based actuation of liquid droplets for microfluidic applications

TL;DR: In this article, a microactuator for rapid manipulation of discrete microdroplets is presented, which is accomplished by direct electrical control of the surface tension through two sets of opposing planar electrodes fabricated on glass.
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TL;DR: In this paper, the authors present an overview of Micromachining Techniques, Mechanical Transducers, Optical Transducers and Ionizing Radiation Transducers for Microfluidic Devices.
Journal ArticleDOI

Electrowetting-based actuation of droplets for integrated microfluidics

TL;DR: In this paper, an alternative approach to microfluidics based upon the micromanipulation of discrete droplets of aqueous electrolyte by electrowetting is reported.
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