Soft Colloidal Robots: Magnetically Guided Liquid Crystal Torons for Targeted Micro-Cargo Delivery

Fuente: arXiv
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Main Authors: Torres, Joel, Coelho, Rodrigo C. V., Oswald, Patrick, Sagés, Francesc, Ignés-Mullol, Jordi
Format: Preprint
Published: 2025
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author Torres, Joel
Coelho, Rodrigo C. V.
Oswald, Patrick
Sagés, Francesc
Ignés-Mullol, Jordi
author_facet Torres, Joel
Coelho, Rodrigo C. V.
Oswald, Patrick
Sagés, Francesc
Ignés-Mullol, Jordi
contents Quasiparticles in liquid crystals, such as torons and skyrmions, represent a new class of topologically protected solitonic excitations, offering a promising route toward soft microrobotics. Here we demonstrate that torons can be propelled by modulated electric fields and magnetically steered with full directional control, thus achieving programmable trajectories without net liquid flow. Within microfluidic architectures, we guide ensembles of torons through confined channels and realize targeted pick-up, transport, and release of colloidal cargo. By combining experiments and numerical simulations, we uncover how magnetic alignment reshapes toron structure, speed, and stability, while confinement within microchannels gives rise to novel transport regimes. Unlike conventional colloidal inclusions, torons are intrinsically uniform, soft, and reconfigurable, establishing them as both an ideal model system for studying emergent phenomena in active topological matter and a versatile platform for next-generation soft robots, adaptive delivery systems, and smart active matter.
format Preprint
id arxiv_https___arxiv_org_abs_2512_12373
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Soft Colloidal Robots: Magnetically Guided Liquid Crystal Torons for Targeted Micro-Cargo Delivery
Torres, Joel
Coelho, Rodrigo C. V.
Oswald, Patrick
Sagés, Francesc
Ignés-Mullol, Jordi
Soft Condensed Matter
Quasiparticles in liquid crystals, such as torons and skyrmions, represent a new class of topologically protected solitonic excitations, offering a promising route toward soft microrobotics. Here we demonstrate that torons can be propelled by modulated electric fields and magnetically steered with full directional control, thus achieving programmable trajectories without net liquid flow. Within microfluidic architectures, we guide ensembles of torons through confined channels and realize targeted pick-up, transport, and release of colloidal cargo. By combining experiments and numerical simulations, we uncover how magnetic alignment reshapes toron structure, speed, and stability, while confinement within microchannels gives rise to novel transport regimes. Unlike conventional colloidal inclusions, torons are intrinsically uniform, soft, and reconfigurable, establishing them as both an ideal model system for studying emergent phenomena in active topological matter and a versatile platform for next-generation soft robots, adaptive delivery systems, and smart active matter.
title Soft Colloidal Robots: Magnetically Guided Liquid Crystal Torons for Targeted Micro-Cargo Delivery
topic Soft Condensed Matter
url https://arxiv.org/abs/2512.12373