Active elastocapillarity in soft solids with negative surface tension
arXiv:2101.04006 · doi:10.1126/sciadv.abk3079
Abstract
Active solids consume energy to allow for actuation, shape change, and wave propagation not possible in equilibrium. Whereas active interfaces have been realized across many experimental systems, control of three-dimensional (3D) bulk materials remains a challenge. Here, we develop continuum theory and microscopic simulations that describe a 3D soft solid whose boundary experiences active surface stresses. The competition between active boundary and elastic bulk yields a broad range of previously unexplored phenomena, which are demonstrations of so-called active elastocapillarity. In contrast to thin shells and vesicles, we discover that bulk 3D elasticity controls snap-through transitions between different anisotropic shapes. These transitions meet at a critical point, allowing a universal classification via Landau theory. The active surface modifies elastic wave propagation to allow zero, or even negative, group velocities. These phenomena offer robust principles for programming shape change and functionality into active solids, from robotic metamaterials down to shape-shifting nanoparticles.
16 pages including Methods, 6 figures. See https://youtu.be/04bqs0VKFCc for Supplementary Movie
References in corpus (8)
- Topology and Dynamics of Active Nematic Vesicles
- Viscoelastic control of spatiotemporal order in bacterial active matter
- Anisotropic colloids through non-trivial buckling
- Topological defects in solids with odd elasticity
- Anisotropic polymer nanoparticles with controlled dimensions from the morphological transformation of isotropic seeds
- Active nonreciprocal attraction between motile particles in an elastic medium
- Validity of Winkler's mattress model for thin elastomeric layers: Beyond Poisson's ratio
- Cloaking by coating: How effectively does a thin, stiff coating hide a soft substrate?