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      Engineering and analysis of surface interactions in a microfluidic herringbone micromixer.

      1 ,
      Lab on a chip
      Royal Society of Chemistry (RSC)

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          Abstract

          We developed a computational model and theoretical framework to investigate the geometrical optimization of particle-surface interactions in a herringbone micromixer. The enhancement of biomolecule- and particle-surface interactions in microfluidic devices through mixing and streamline disruption holds promise for a variety of applications. This analysis provides guidelines for optimizing the frequency and specific location of surface interactions based on the flow pattern and relative hydraulic resistance between a groove and the effective channel. The channel bottom, i.e., channel surface between grooves, was identified as the dominant location for surface contact. In addition, geometries that decrease the groove-to-channel hydraulic resistance improve contact with the channel top. Thus, herringbone mixers appear useful for a variety of surface-interaction applications, yet they have largely not been employed in an optimized fashion.

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          Author and article information

          Journal
          Lab Chip
          Lab on a chip
          Royal Society of Chemistry (RSC)
          1473-0189
          1473-0189
          Aug 07 2012
          : 12
          : 15
          Affiliations
          [1 ] National Institute of Standards and Technology, Biochemical Science Division, Gaithersburg, MD, USA.
          Article
          10.1039/c2lc40356k
          22706612
          3a8a096a-91ee-400c-b565-06890f7e61dd
          History

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