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From dot to ring: the role of friction on the deposition pattern of a drying colloidal suspension droplet

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arxiv 1804.09041 v1 pith:VKGDE7WR submitted 2018-04-24 physics.flu-dyn cond-mat.soft

From dot to ring: the role of friction on the deposition pattern of a drying colloidal suspension droplet

classification physics.flu-dyn cond-mat.soft
keywords frictiondepositionforcedepositdropletdryingparticlescolloidal
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The deposition of particles on a substrate by drying a colloidal suspension droplet is at the core of applications ranging from traditional printing on paper to printable electronics or photovoltaic devices. The self-pinning induced by the accumulation of particles at the contact line plays an important role in the formation of the deposition. In this paper, we investigate both numerically and theoretically, the effect of friction between the particles and the substrate on the deposition pattern. Without friction, the contact line shows a stick-slip behaviour and a dot-like deposit is left after the droplet is evaporated. By increasing the friction force, we observe a transition from a dot-like to a ring-like deposit. We propose a theoretical model to predict the effective radius of the particle deposition as a function of the friction force. Our theoretical model predicts a critical friction force when the self-pinning happens and the effective radius of deposit increases with increasing friction force, confirmed by our simulation results. Our results can find implications for developing active control strategies for the deposition of drying droplets.

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