Spontaneous rotation can stabilise ordered chiral active fluids.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 30796222.
- Also identified by DOI 10.1038/s41467-019-08914-7 and PMC identifier 6385212.
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Abstract
Active hydrodynamic theories are a powerful tool to study the emergent ordered phases of internally driven particles such as bird flocks, bacterial suspension and their artificial analogues. While theories of orientationally ordered phases are by now well established, the effect of chirality on these phases is much less studied. In this paper, we present a complete dynamical theory of orientationally ordered chiral particles in two-dimensional incompressible systems. We show that phase-coherent states of rotating chiral particles are remarkably stable in both momentum-conserved and non-conserved systems in contrast to their non-rotating counterparts. Furthermore, defect separation-which drives chaotic flows in non-rotating active fluids-is suppressed by intrinsic rotation of chiral active particles. We thus establish chirality as a source of dramatic stabilisation in active systems, which could be key in interpreting the collective behaviors of some biological tissues, cytoskeletal systems and collections of bacteria.
Medical subject headings
- Hydrodynamics
- Physical Phenomena
- Rotation