Grooved structures have been widely studied in particle separation and fluid mixing in microfluidic channel systems. In this brief report, we demonstrate the use of patterning flows produced by two different sorts of grooved surfaces: single slanted groove series (for enrichment patterns) and V-shaped groove series (for focusing patterns), into a microfluidic device to continuously manipulate the flowing particles, including microbeads with , , and in diameter and mouse dendritic cells of comparable sizes to the depth of the channel. The device with grooved channels was developed and fabricated by soft-lithographic techniques. The particle distributions after passing through the single slanted grooves illustrate the size-dependent enrichment profiles. On the other hand, particles passing through the V-shaped grooves show focusing patterns downstream, for the combination effect from both sides of single slanted grooves setup side-by-side. Compared with devices utilizing sheath flows, the focusing patterns generated in this report are unique without introducing additional flow control. The alignment of the concentrated particles is expected to facilitate the visualization of sizing and counting in cell-based devices. On the other hand, the size-dependent patterns of particle distributions have the potential for the application of size-based separation.
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July 2009
Technical Briefs
A Microfluidic Manipulator for Enrichment and Alignment of Moving Cells and Particles
Hsiu-hung Chen,
Hsiu-hung Chen
Department of Mechanical Engineering,
University of Washington
, Seattle, WA 98195
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Bingbing Sun,
Bingbing Sun
Department of Chemical Engineering,
University of Washington
, Seattle, WA 98195
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Kenny K. Tran,
Kenny K. Tran
Department of Chemical Engineering,
University of Washington
, Seattle, WA 98195
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Hong Shen,
Hong Shen
Department of Chemical Engineering,
University of Washington
, Seattle, WA 98195
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Dayong Gao
Dayong Gao
Department of Mechanical Engineering,
University of Washington
, Seattle, WA 98195
Search for other works by this author on:
Hsiu-hung Chen
Department of Mechanical Engineering,
University of Washington
, Seattle, WA 98195
Bingbing Sun
Department of Chemical Engineering,
University of Washington
, Seattle, WA 98195
Kenny K. Tran
Department of Chemical Engineering,
University of Washington
, Seattle, WA 98195
Hong Shen
Department of Chemical Engineering,
University of Washington
, Seattle, WA 98195
Dayong Gao
Department of Mechanical Engineering,
University of Washington
, Seattle, WA 98195J Biomech Eng. Jul 2009, 131(7): 074505 (4 pages)
Published Online: June 4, 2009
Article history
Received:
September 16, 2008
Revised:
February 20, 2009
Published:
June 4, 2009
Citation
Chen, H., Sun, B., Tran, K. K., Shen, H., and Gao, D. (June 4, 2009). "A Microfluidic Manipulator for Enrichment and Alignment of Moving Cells and Particles." ASME. J Biomech Eng. July 2009; 131(7): 074505. https://doi.org/10.1115/1.3127258
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