Selective and collective actuation in active solids
Abstract
Active solids consist of elastically coupled out-of-equilibrium units performing work(1-13). They are central to autonomous processes, such as locomotion, self-oscillations and rectification, in biological systems(14-25), designer materials(26) and robotics(27-31). Yet, the feedback mechanism between elastic and active forces as well as the possible emergence of collective behaviours in a mechanically stable elastic solid remains elusive. Here we introduce a minimal realization of an active elastic solid in which we characterize the emergence of selective and collective actuation resulting from the interplay between activity and elasticity. Polar active agents exert forces on the nodes of a two-dimensional elastic lattice. The resulting displacement field nonlinearly reorients the active agents. For a large-enough coupling, a collective oscillation of the lattice nodes around their equilibrium position emerges. Only a few elastic modes are actuated and crucially, they are not necessarily the lowest energy ones. By combining experiments with the numerical and theoretical analyses of an agent's model, we unveil the bifurcation scenario and selection mechanism by which the collective actuation takes place. Our findings may provide a new mechanism for oscillatory dynamics in biological systems(14,19,21,24) and the opportunity for bona fide autonomy in metamaterials(32,33).
Más información
Título según WOS: | Selective and collective actuation in active solids |
Título de la Revista: | Nature Physics |
Volumen: | 18 |
Número: | 10 |
Editorial: | NATURE PORTFOLIO |
Fecha de publicación: | 2022 |
Página de inicio: | 1234 |
Página final: | + |
DOI: |
10.1038/s41567-022-01704-x |
Notas: | ISI |