Active boundary layers
J\'er\^ome Hardo\"uin, Claire Dor\'e, Justine Laurent, Teresa, Lopez-Leon, Jordi Ign\'es-Mullol, Francesc Sagu\'es

TL;DR
This paper investigates how confining walls influence active nematic liquid crystals, revealing the formation of a topological boundary layer with unique defect behaviors and demonstrating control over the system's dynamics through boundary conditions.
Contribution
It experimentally demonstrates the formation of a topological boundary layer in active nematics and shows how walls can control defect dynamics and induce novel behaviors.
Findings
Wall induces negatively charged defect accumulation
Boundary layer influences overall nematic dynamics
Wall defects exhibit high motility and unique recombination behaviors
Abstract
The role of boundary layers in conventional liquid crystals is commonly subsumed in their anchoring on confining walls. In the classical view, anchoring enslaves the orientational field of the passive material under equilibrium conditions. In this work, we experimentally explore the role of confining walls in the behavior of an active nematic. We find that, under slip boundary conditions, the wall induces the accumulation of negatively charged topological defects in its vicinity, resulting in the formation of a topological boundary layer that polarizes the wall. While the dynamics of wall and bulk defects are decoupled, we find that the active boundary layer influences the overall dynamics of the system, to the point of fully controlling the behavior of the active nematic in situations of strong confinement. Finally, we show that wall defects exhibit behaviors that are essentially…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation · Micro and Nano Robotics · Slime Mold and Myxomycetes Research
