Topological sound in active-liquid metamaterials
arXiv:1610.06873 · doi:10.1038/nphys4193
Abstract
Liquids composed of self-propelled particles have been experimentally realized using molecular, colloidal, or macroscopic constituents. These active liquids can flow spontaneously even in the absence of an external drive. Unlike spontaneous active flow, the propagation of density waves in confined active liquids is not well explored. Here, we exploit a mapping between density waves on top of a chiral flow and electrons in a synthetic gauge field to lay out design principles for artificial structures termed topological active metamaterials. We design metamaterials that break time-reversal symmetry using lattices composed of annular channels filled with a spontaneously flowing active liquid. Such active metamaterials support topologically protected sound modes that propagate unidirectionally, without backscattering, along either sample edges or domain walls and despite overdamped particle dynamics. Our work illustrates how parity-symmetry breaking in metamaterial structure combined with microscopic irreversibility of active matter leads to novel functionalities that cannot be achieved using only passive materials.
References in corpus (10)
- Topological Acoustics
- Observation of phononic helical edge states in a mechanical 'topological insulator'
- Topological modes bound to dislocations in mechanical metamaterials
- Nonlinear conduction via solitons in a topological mechanical insulator
- Emergent vortices in populations of colloidal rollers
- Pattern formation in self-propelled particles with density-dependent motility
- Transition from turbulent to coherent flows in confined three-dimensional active fluids
- Directed collective motion of bacteria under channel confinement
- Active matter logic for autonomous microfluidics
- Stochastic cycle selection in active flow networks