Polar chiral active matter is formally isomorphic to a disordered resistively shunted Josephson array, supporting information supercurrents and providing a microscopic derivation of Goldstone spin waves for inertial flocking models.
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4 Pith papers cite this work. Polarity classification is still indexing.
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UNVERDICTED 4representative citing papers
Nonreciprocal surface tension in the Nonreciprocal Cahn-Hilliard model induces defect motility and organization into target patterns and mosaic-waves whose large-scale dynamics belong to the anisotropic Kardar-Parisi-Zhang universality class.
A new coarse-graining operator applied to phase-coupled motile oscillators reveals an inverse energy cascade and macroscopic vortex clustering in overdamped chiral active matter.
A dynamic-graph model derived from first principles describes multicellular self-organization and gene control in E. coli.
citing papers explorer
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Polar chiral active matter as a motile, disordered Josephson array: Information supercurrents and Goldstone spin waves
Polar chiral active matter is formally isomorphic to a disordered resistively shunted Josephson array, supporting information supercurrents and providing a microscopic derivation of Goldstone spin waves for inertial flocking models.
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Nonreciprocal surface tension: anisotropy-induced defect motility and organization
Nonreciprocal surface tension in the Nonreciprocal Cahn-Hilliard model induces defect motility and organization into target patterns and mosaic-waves whose large-scale dynamics belong to the anisotropic Kardar-Parisi-Zhang universality class.
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Renormalised hydrodynamics in polar chiral active matter: Spectral scaling and vortex clustering in phase-coupled, motile oscillators
A new coarse-graining operator applied to phase-coupled motile oscillators reveals an inverse energy cascade and macroscopic vortex clustering in overdamped chiral active matter.
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Control of genes by self-organizing multicellular interaction networks
A dynamic-graph model derived from first principles describes multicellular self-organization and gene control in E. coli.