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Issue 23, 2010
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Three-dimensional surface microfluidics enabled by spatiotemporal control of elastic fluidic interface

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Abstract

As an emerging alternative to the conventional counterpart, surface microfluidics incorporates both intrinsic resistive solid-liquid and elastic frictionless gas-liquid interfaces, leading to unique flow-pressure characteristics. Furthermore, the open-surface microfluidic platforms can be fabricated on a monolithic substrate with high wettability contrast by the previously reported one-step lithographic process of a photosensitive superhydrophobic nanocomposite material, which permits flexible fluidic operations and direct surface modifications. In the paper, we first present three-dimensional microfluidic manipulations utilizing the unconventional gas-liquid interfaces of surface microfluidics, outlined by the micropatterned wetting boundaries (also known as the triple lines). In contrast to the primary linear (resistive) nature of the conventional closed-channel microfluidics, the distinct elastic interface of surface microfluidics enables remarkable three-dimensional (deformable) and time-dependent (capacitive) operations of the flow. Specifically, spatiotemporal dependence of microflow patterns on the planar fluidic surfaces has been theoretically analyzed and experimentally characterized. Utilizing the unconventional interface-enabled flow-pressure relationship, novel surface fluidic operations, including microflow regulation and flow-controlled switching, have been demonstrated and fully investigated. Furthermore, three-dimensional surface microfluidic networks together with analog-to-digital stereo-flow activations have been established, in which miniature capillary bridges form fluidic connections between two independent surface microfluidic circuits.

Graphical abstract: Three-dimensional surface microfluidics enabled by spatiotemporal control of elastic fluidic interface

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Publication details

The article was received on 06 Jul 2010, accepted on 21 Sep 2010 and first published on 08 Oct 2010


Article type: Paper
DOI: 10.1039/C0LC00173B
Citation: Lab Chip, 2010,10, 3271-3276
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    Three-dimensional surface microfluidics enabled by spatiotemporal control of elastic fluidic interface

    L. Hong and T. Pan, Lab Chip, 2010, 10, 3271
    DOI: 10.1039/C0LC00173B

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