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Orientation control and nonlinear trajectory tracking of colloidal particles using microfluidics

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arxiv 1907.08567 v1 pith:MCRBT25R submitted 2019-07-19 cond-mat.soft physics.flu-dyn

classification cond-mat.softphysics.flu-dyn
keywords particlesanisotropiccontrolfloworientationcolloidalapplicationsbrownian
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Suspensions of anisotropic Brownian particles are commonly encountered in a wide array of applications such as drug delivery and manufacturing of fiber-reinforced composites. Technological applications and fundamental studies of small anisotropic particles critically require precise control of particle orientation over defined trajectories and paths. In this work, we demonstrate robust control over the two-dimensional (2D) center-of-mass position and orientation of anisotropic Brownian particles using only fluid flow. We implement a path-following model predictive control scheme to manipulate colloidal particles over defined trajectories in position space, where the speed of movement along the path is a degree of freedom in the controller design. We further explore how the external flow field affects the orientation dynamics of anisotropic particles in steady and transient extensional flow using a combination of experiments and analytical modeling. Overall, this technique offers new avenues for fundamental studies of anisotropic colloidal particles using only fluid flow, without the need for external electric or optical fields.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Flow topology during multiplexed particle manipulation using a Stokes Trap

    physics.flu-dyn 2019-08 conditional novelty 6.0 of 10

    During two-particle manipulation in a Stokes trap, the controller generates zero or one stagnation points, not two, and manipulation time rises with the flow-rate penalty and falls with the end penalty until saturation.

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