Autonomous waves and global motion modes in living active solids
arXiv:2208.09664 · doi:10.1038/s41567-022-01836-0
Abstract
Elastic active matter or active solid consists of self-propelled units embedded in an elastic matrix. Active solid resists deformation; the shape-preserving property and the intrinsic non-equilibrium nature make active solids a superior component for self-driven devices. Nonetheless, the mechanical properties and emergent behavior of active solids are poorly understood. Using a biofilm-based bacterial active solid, here we discovered self-sustained elastic waves with unique wave properties not seen in passive solids, such as power-law scaling of wave speed with activity. Under isotropic confinement, the active solid develops two topologically distinct global motion modes that can be selectively excited, with a surprising step-like frequency jump at mode transition. Our findings reveal novel spatiotemporal order in elastic active matter and may guide the development of solid-state adaptive or living materials.
References in corpus (5)
- Topology and Dynamics of Active Nematic Vesicles
- Selective and Collective Actuation in Active Solids
- Self-organization of swimmers drives long-range fluid transport in bacterial colonies
- Stress reorganisation and response in active solids
- Self-oscillation and Synchronisation Transitions in Elasto-Active Structures
Cited by in corpus (21)
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- Active Solids Model: Rigid Body Motion and Shape-changing Mechanisms
- Emergent Mesoscale Correlations in Active Solids with Noisy Chiral Dynamics
- Noise-Induced Collective Actuation in Active Solids
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- Mechanical inhibition of dissipation in a thermodynamically consistent active solid
- Spin and velocity correlations in a confined two-dimensional fluid of disk-shaped active rotors
- Mechanochemical feedback drives complex inertial dynamics in active solids
- Collective excitations in active solids featuring alignment interactions
- A geometric formulation of Schaefer's theory of Cosserat solids
- More is less in unpercolated active solids
- Rheologically tuned modes of collective transport in active viscoelastic films
- Unified description of viscous, viscoelastic, or elastic thin active films on substrates
- Motility-induced crystallization and rotating crystallites
- Collective dynamics of densely confined active polar disks with self- and mutual alignment
- Reentrant transition to collective actuation in active solids with a polarizing field
- Topological defects in polar active matter
- Collective actuation in active solids in the presence of a polarizing field: a systematic analysis of the dynamical regimes
- Theory of Nonequilibrium Crystallization and the Phase Diagram of Active Brownian Spheres
- Learning general pair interactions between self-propelled particles