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Surface Tensions between Active Fluids and Solid Interfaces: bare vs dressed

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arxiv 1907.07738 v1 pith:P4CDVZUX submitted 2019-07-17 cond-mat.soft cond-mat.stat-mech

classification cond-mat.softcond-mat.stat-mech
keywords surfaceactivebaretensionforcessetup-dependentsolidsystems
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We analyze the surface tension exerted at the interface between an active fluid and a solid boundary in terms of tangential forces. Focusing on active systems known to possess an equation of state for the pressure, we show that interfacial forces are of a more complex nature. Using a number of macroscopic setups, we show that the surface tension is a combination of an equation-of-state abiding part and of setup-dependent contributions. The latter arise from generic setup-dependent steady currents which "dress" the measurement of the "bare" surface tension. The former shares interesting properties with its equilibrium counterpart, and can be used to generalize the Young-Laplace law to active systems. We finally show how a suitably designed probe can directly access this bare surface tensions, which can also be computed using a generalized Virial formula.

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  1. Capillary action in scalar active matter

    cond-mat.soft 2019-08 conditional novelty 7.0 of 10

    A minimal lattice model of scalar active matter rises in thin tubes, wets vertical plates, and imbibes porous media against gravity, with heights scaling as powers of the active sedimentation length.

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