Defect motility in pulsating active matter arises from a ratchet effect of asymmetric rotating cores, regulating the spiral-to-fiber wave crossover.
Spatiotemporal Control of Charge +1 Topological Defects in Polar Active Matter
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Topological defects are a conspicuous feature of active liquid crystals that have been associated with important morphogenetic transitions in organismal development. Robust development thus requires a tight control of the motion and placement of topological defects. In this manuscript, we study a mechanism to control +1 topological defects in an active polar fluid confined to a disk. If activity is localized in an annulus within the disk, the defect moves on a circular trajectory around the center of the disk. Using an ansatz for the polar field, we determine the dependence of the angular speed and the circle radius on the boundary orientation of the polar field and the active annulus. Using a proportional integral controller, we guide the defect along complex trajectories by changing the active annulus size and the boundary orientation.
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cond-mat.soft 1years
2026 1verdicts
ACCEPT 1representative citing papers
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Topology of pulsating active matter: Defect asymmetry controls emergent motility
Defect motility in pulsating active matter arises from a ratchet effect of asymmetric rotating cores, regulating the spiral-to-fiber wave crossover.