Literature DB >> 22761309

Intrinsic particle-induced lateral transport in microchannels.

Hamed Amini1, Elodie Sollier, Westbrook M Weaver, Dino Di Carlo.   

Abstract

In microfluidic systems at low Reynolds number, the flow field around a particle is assumed to maintain fore-aft symmetry, with fluid diverted by the presence of a particle, returning to its original streamline downstream. This current model considers particles as passive components of the system. However, we demonstrate that at finite Reynolds number, when inertia is taken into consideration, particles are not passive elements in the flow but significantly disturb and modify it. In response to the flow field, particles translate downstream while rotating. The combined effect of the flow of fluid around particles, particle rotation, channel confinement (i.e., particle dimensions approaching those of the channel), and finite fluid inertia creates a net recirculating flow perpendicular to the primary flow direction within straight channels that resembles the well-known Dean flow in curved channels. Significantly, the particle generating this flow remains laterally fixed as it translates downstream and only the fluid is laterally transferred. Therefore, as the particles remain inertially focused, operations can be performed around the particles in a way that is compatible with downstream assays such as flow cytometry. We apply this particle-induced transfer to perform fluid switching and mixing around rigid microparticles as well as deformable cells. This transport phenomenon, requiring only a simple channel geometry with no external forces to operate, offers a practical approach for fluid transfer at high flow rates with a wide range of applications, including sample preparation, flow reaction, and heat transfer.

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Mesh:

Year:  2012        PMID: 22761309      PMCID: PMC3406876          DOI: 10.1073/pnas.1207550109

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  20 in total

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2.  Inertial manipulation and transfer of microparticles across laminar fluid streams.

Authors:  Daniel R Gossett; Henry Tat Kwong Tse; Jaideep S Dudani; Keisuke Goda; Travis A Woods; Steven W Graves; Dino Di Carlo
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4.  Dynamic self-assembly and control of microfluidic particle crystals.

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Journal:  Proc Natl Acad Sci U S A       Date:  2010-12-13       Impact factor: 11.205

Review 5.  Blood-on-a-chip.

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Journal:  Annu Rev Biomed Eng       Date:  2005       Impact factor: 9.590

6.  Centrifugal forces alter streamline topology and greatly enhance the rate of heat and mass transfer from neutrally buoyant particles to a shear flow.

Authors:  G Subramanian; D L Koch
Journal:  Phys Rev Lett       Date:  2006-04-04       Impact factor: 9.161

7.  Sheathless inertial cell ordering for extreme throughput flow cytometry.

Authors:  Soojung Claire Hur; Henry Tat Kwong Tse; Dino Di Carlo
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8.  Mobile magnetic particles as solid-supports for rapid surface-based bioanalysis in continuous flow.

Authors:  Sally A Peyman; Alexander Iles; Nicole Pamme
Journal:  Lab Chip       Date:  2009-08-21       Impact factor: 6.799

9.  Pinched flow coupled shear-modulated inertial microfluidics for high-throughput rare blood cell separation.

Authors:  Ali Asgar S Bhagat; Han Wei Hou; Leon D Li; Chwee Teck Lim; Jongyoon Han
Journal:  Lab Chip       Date:  2011-04-19       Impact factor: 6.799

10.  Particle segregation and dynamics in confined flows.

Authors:  Dino Di Carlo; Jon F Edd; Katherine J Humphry; Howard A Stone; Mehmet Toner
Journal:  Phys Rev Lett       Date:  2009-03-03       Impact factor: 9.161

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  12 in total

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Journal:  Biomicrofluidics       Date:  2013-01-24       Impact factor: 2.800

Review 2.  Rare cell isolation and analysis in microfluidics.

Authors:  Yuchao Chen; Peng Li; Po-Hsun Huang; Yuliang Xie; John D Mai; Lin Wang; Nam-Trung Nguyen; Tony Jun Huang
Journal:  Lab Chip       Date:  2014-02-21       Impact factor: 6.799

3.  Long-range forces affecting equilibrium inertial focusing behavior in straight high aspect ratio microfluidic channels.

Authors:  Amy E Reece; John Oakey
Journal:  Phys Fluids (1994)       Date:  2016-04-27       Impact factor: 3.521

4.  Visually Based Characterization of the Incipient Particle Motion in Regular Substrates: From Laminar to Turbulent Conditions.

Authors:  José R Agudo; Jiwon Han; Jinyoung Park; Sinyoung Kwon; Soebiakto Loekman; Giovanni Luzi; Christoph Linderberger; Antonio Delgado; Andreas Wierschem
Journal:  J Vis Exp       Date:  2018-02-22       Impact factor: 1.355

5.  Staged Inertial Microfluidic Focusing for Complex Fluid Enrichment.

Authors:  Amy E Reece; Kaja Kaastrup; Hadley D Sikes; John Oakey
Journal:  RSC Adv       Date:  2015       Impact factor: 3.361

Review 6.  Inertial focusing in microfluidics.

Authors:  Joseph M Martel; Mehmet Toner
Journal:  Annu Rev Biomed Eng       Date:  2014-05-29       Impact factor: 9.590

7.  Robust and highly performant ring detection algorithm for 3d particle tracking using 2d microscope imaging.

Authors:  Eldad Afik
Journal:  Sci Rep       Date:  2015-09-02       Impact factor: 4.379

8.  Optofluidic fabrication for 3D-shaped particles.

Authors:  Kevin S Paulsen; Dino Di Carlo; Aram J Chung
Journal:  Nat Commun       Date:  2015-04-23       Impact factor: 14.919

9.  Quasi-3D Modeling and Efficient Simulation of Laminar Flows in Microfluidic Devices.

Authors:  Md Zahurul Islam; Ying Yin Tsui
Journal:  Sensors (Basel)       Date:  2016-10-03       Impact factor: 3.576

10.  Spiral microchannel with rectangular and trapezoidal cross-sections for size based particle separation.

Authors:  Guofeng Guan; Lidan Wu; Ali Asgar Bhagat; Zirui Li; Peter C Y Chen; Shuzhe Chao; Chong Jin Ong; Jongyoon Han
Journal:  Sci Rep       Date:  2013       Impact factor: 4.379

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