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Main Authors: Amaral, Guilherme N. C., Zhao, Hanqing, Sedahmed, Mahmoud, Campante, Tomás, Smalyukh, Ivan I., Tasinkevych, Mykola, da Gama, Margarida M. Telo, Coelho, Rodrigo C. V.
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2409.09486
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author Amaral, Guilherme N. C.
Zhao, Hanqing
Sedahmed, Mahmoud
Campante, Tomás
Smalyukh, Ivan I.
Tasinkevych, Mykola
da Gama, Margarida M. Telo
Coelho, Rodrigo C. V.
author_facet Amaral, Guilherme N. C.
Zhao, Hanqing
Sedahmed, Mahmoud
Campante, Tomás
Smalyukh, Ivan I.
Tasinkevych, Mykola
da Gama, Margarida M. Telo
Coelho, Rodrigo C. V.
contents Three-dimensional (3D) simulations of the structure of liquid crystal (LC) torons, topologically protected distortions of the LC director field, under material flows are rare but essential in microfluidic applications. Here, we show that torons adopt a steady-state configuration at low flow velocity before disintegrating at higher velocities, in line with experimental results. Furthermore, we show that under partial slip conditions at the boundaries, the flow induces a reversible elongation of the torons, also consistent with the experimental observations. These results are in contrast with previous simulation results for 2D skyrmions under similar flow conditions, highlighting the need for a 3D description of this LC soliton in relation to its coupling to the material flow. These findings pave the way for future studies of other topological solitons, like hopfions and heliknotons, in flowing soft matter systems.
format Preprint
id arxiv_https___arxiv_org_abs_2409_09486
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Liquid crystal torons in Poiseuille-like flows
Amaral, Guilherme N. C.
Zhao, Hanqing
Sedahmed, Mahmoud
Campante, Tomás
Smalyukh, Ivan I.
Tasinkevych, Mykola
da Gama, Margarida M. Telo
Coelho, Rodrigo C. V.
Soft Condensed Matter
Three-dimensional (3D) simulations of the structure of liquid crystal (LC) torons, topologically protected distortions of the LC director field, under material flows are rare but essential in microfluidic applications. Here, we show that torons adopt a steady-state configuration at low flow velocity before disintegrating at higher velocities, in line with experimental results. Furthermore, we show that under partial slip conditions at the boundaries, the flow induces a reversible elongation of the torons, also consistent with the experimental observations. These results are in contrast with previous simulation results for 2D skyrmions under similar flow conditions, highlighting the need for a 3D description of this LC soliton in relation to its coupling to the material flow. These findings pave the way for future studies of other topological solitons, like hopfions and heliknotons, in flowing soft matter systems.
title Liquid crystal torons in Poiseuille-like flows
topic Soft Condensed Matter
url https://arxiv.org/abs/2409.09486