4.6 Article

Motility-induced shear thickening in dense colloidal suspensions

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SOFT MATTER
卷 19, 期 24, 页码 4571-4578

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d3sm00035d

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This paper investigates the role of self-propulsion in the rheological response of a dense colloidal suspension through particle-resolved Brownian dynamics simulations. It is found that self-propulsion lowers the stress barrier needed to be overcome during the disordering transition of the suspension. The rheological response of the active sheared system shows a transition from shear-thinning to shear-thickening behavior with increasing self-propulsion, attributed to clustering induced by motility.
Phase transitions and collective dynamics of active colloidal suspensions are fascinating topics in soft matter physics, particularly for out-of-equilibrium systems, which can lead to rich rheological behaviours in the presence of steady shear flow. Here the role of self-propulsion in the rheological response of a dense colloidal suspension is investigated by using particle-resolved Brownian dynamics simulations. First, the combined effect of activity and shear in the solid on the disordering transition of the suspension is analyzed. While both self-propulsion and shear destroy order and melt the system if critical values are exceeded, self-propulsion largely lowers the stress barrier needed to be overcome during the transition. We further explore the rheological response of the active sheared system once a steady state is reached. While passive suspensions show a solid-like behaviour, turning on particle motility fluidises the system. At low self-propulsion, the active suspension behaves in the steady state as a shear-thinning fluid. Increasing the self-propulsion changes the behaviour of the liquid from shear-thinning to shear-thickening. We attribute this to clustering in the sheared suspensions induced by motility. This new phenomenon of motility-induced shear thickening (MIST) can be used to tailor the rheological response of colloidal suspensions.

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