Spontaneous rotation and propulsion of suspended capsules in active nematics
arXiv:2510.17643 · doi:10.1103/nvrc-3mlt
Abstract
We investigate the dynamics of elastic capsules suspended in two-dimensional active nematic fluids using lattice Boltzmann simulations. The capsules, modeled as flexible membranes enclosing active internal regions, exhibit a rich variety of behaviors shaped by their geometry and the interplay between internal and external activity. Circular capsules with active interiors undergo persistent rotation driven by internally confined +1/2 topological defects. Axisymmetric capsules, such as boomerangs, develop directed motion along their axis of symmetry due to unbalanced active forces generated by defect distributions near their boundaries. We further show that capsule flexibility suppresses motility and rotation, as active stresses are dissipated into shape deformations. These findings reveal how shape, deformability, and defect dynamics cooperate to produce emergent motility in soft active matter, with potential applications in the design of microswimmers and drug delivery vehicles.
References in corpus (12)
- Spontaneous motion in hierarchically assembled active matter
- Topology and Dynamics of Active Nematic Vesicles
- Defect dynamics in active nematics
- Data-driven quantitative modeling of bacterial active nematics
- Rotation and propulsion in 3d active chiral droplets
- Anomalous diffusion and Lévy walks distinguish active from inertial turbulence
- Active boundary layers
- Rectified Rotational Dynamics of Mobile Inclusions in Two-Dimensional Active Nematics
- Lattice Boltzmann simulation of deformable fluid-filled bodies: progress and perspectives
- Probing active nematics with in-situ microfabricated elastic inclusions
- Dynamics of a Passive Droplet in Active Turbulence
- Active nematic pumps