Asymmetric bistability of chiral particle orientation in viscous shear flows

Author:

Zöttl Andreas1234ORCID,Tesser Francesca12,Matsunaga Daiki5ORCID,Laurent Justine12,du Roure Olivia12ORCID,Lindner Anke12ORCID

Affiliation:

1. Laboratoire de Physique et Mécanique des Milieux Hétérogènes, CNRS, École Supérieure de Physique et de Chimie Industrielles de la ville de Paris, Université Paris Sciences et Lettres, Sorbonne Université, Université Paris Cité, Paris 75005, France

2. Sorbonne Université, Université Paris Cité, Paris 75005, France

3. Faculty of Physics, University of Vienna, Wien 1090, Austria

4. Institute for Theoretical Physics, Technische Universität Wien, Wien 1040, Austria

5. Graduate School of Engineering Science, Osaka University, Osaka 5608531, Japan

Abstract

The migration of helical particles in viscous shear flows plays a crucial role in chiral particle sorting. Attaching a nonchiral head to a helical particle leads to a rheotactic torque inducing particle reorientation. This phenomenon is responsible for bacterial rheotaxis observed for flagellated bacteria as Escherichia coli in shear flows. Here, we use a high-resolution microprinting technique to fabricate microparticles with controlled and tunable chiral shape consisting of a spherical head and helical tails of various pitch and handedness. By observing the fully time-resolved dynamics of these microparticles in microfluidic channel flow, we gain valuable insights into chirality-induced orientation dynamics. Our experimental model system allows us to examine the effects of particle elongation, chirality, and head heaviness for different flow rates on the orientation dynamics, while minimizing the influence of Brownian noise. Through our model experiments, we demonstrate the existence of asymmetric bistability of the particle orientation perpendicular to the flow direction. We quantitatively explain the particle equilibrium orientations as a function of particle properties, initial conditions and flow rates, as well as the time-dependence of the reorientation dynamics through a theoretical model. The model parameters are determined using boundary element simulations, and excellent agreement with experiments is obtained without any adjustable parameters. Our findings lead to a better understanding of chiral particle transport and bacterial rheotaxis and might allow the development of targeted delivery applications.

Funder

European Commission

Austrian Science Fund

Agence Nationale de la Recherche

MEXT | Japan Society for the Promotion of Science

MEXT | JST | Precursory Research for Embryonic Science and Technology

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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