Defect-polymorphism controlled electrophoretic propulsion of anisometric microparticles in a nematic liquid crystal
arXiv:2201.09190 · doi:10.1103/PhysRevApplied.18.014030
Abstract
Nontrivial shape of colloidal particles create complex elastic distortions and topological defects in liquid crystals and play a key role in governing their electrophoretic propulsion through the medium. Here, we report experimental results on defects and electrophoretic transport of anisometric (snowman-shaped) dielectric particles subjected to an alternating electric field perpendicular to the director in a nematic liquid crystal. We demonstrate that the shape asymmetry gives rise to defect-polymorphism by nucleating point or ring defects at multiple locations on the particle and controls the direction as well as the magnitude of the electrophoretic propulsion. Our findings unveil a novel degree of freedom in translocating microparticles in liquid crystals for applications in microfluidics, controlled transport and assembly.
12 pages, 4 figures
References in corpus (10)
- Induced-Charge Electro-Osmosis
- Topological colloids
- Liquid Crystal Colloids
- Nonlinear electrophoresis of dielectric and metal spheres in a nematic liquid crystal
- Liquid crystal-enabled electroosmosis through spatial charge separation in distorted regions as a novel mechanism of electrokinetics
- Reconfigurable Artificial Microswimmers with Internal Feedback
- Liquid crystal-enabled electrophoresis of spheres in a nematic medium with negative dielectric anisotropy
- Magnetically responsive gourd-shaped colloidal particles in cholesteric liquid crystals
- A novel method for measuring electric field induced dipole moments of metal-dielectric Janus particles in nematic liquid crystals
- Electric field driven controllable motility of metal-dielectric Janus particles with boojum defects in a nematic liquid crystal