4.8 Article

Universal motion of mirror-symmetric microparticles in confined Stokes flow

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2005068117

Keywords

microfluidics; Hele-Shaw flow; particle-laden flow

Funding

  1. Dutch Research Council
  2. Dutch Ministry of Education, Culture and Science
  3. NWO [722-014-007]

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Comprehensive understanding of particle motion in microfluidic devices is essential to unlock additional technologies for shape-based separation and sorting of microparticles like microplastics, cells, and crystal polymorphs. Such particles interact hydrodynamically with confining surfaces, thus altering their trajectories. These hydrodynamic interactions are shape dependent and can be tuned to guide a particle along a specific path. We produce strongly confined particles with various shapes in a shallow microfluidic channel via stop flow lithography. Regardless of their exact shape, particles with a single mirror plane have identical modes of motion: in-plane rotation and cross-stream translation along a bell-shaped path. Each mode has a characteristic time, determined by particle geometry. Furthermore, each particle trajectory can be scaled by its respective characteristic times onto two master curves. We propose minimalistic relations linking these timescales to particle shape. Together these master curves yield a trajectory universal to particles with a single mirror plane.

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