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May 15, 2024Proceedings of the National Academy of Sciences33 citationsOpen Access

Design rules for controlling active topological defects

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SSSuraj ShankarLSLuca V. D. ScharrerMBMark J. Bowick

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Abstract

Topological defects play a central role in the physics of many materials, including magnets, superconductors, and liquid crystals. In active fluids, defects become autonomous particles that spontaneously propel from internal active stresses and drive chaotic flows stirring the fluid. The intimate connection between defect textures and active flow suggests that properties of active materials can be engineered by controlling defects, but design principles for their spatiotemporal control remain elusive. Here, we propose a symmetry-based additive strategy for using elementary activity patterns, as active topological tweezers, to create, move, and braid such defects. By combining theory and simulations, we demonstrate how, at the collective level, spatial activity gradients act like electric fields which, when strong enough, induce an inverted topological polarization of defects, akin to a negative susceptibility dielectric. We harness this feature in a dynamic setting to collectively pattern and transport interacting active defects. Our work establishes an additive framework to sculpt flows and manipulate active defects in both space and time, paving the way to design programmable active and living materials for transport, memory, and logic.

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Cite This Study

Shankar et al. (2024) studied this question.

synapsesocial.com/papers/68e69d64b6db643587623192https://doi.org/10.1073/pnas.2400933121
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Spatial Activity Patterning and Topological Defect Transport in Acoustically Energized Active Liquid Crystals2026
  2. 2Harnessing acoustic topology for dynamic control of liquid crystal defects2026
  3. 3Topological defects in polar active matter2025
  4. 4Anti-hyperuniform critical states of active topological defects2025
  5. 5Integer defects, flow localization, and bistability on curved active surfaces2024