Regulated polarization of active particles in local osmotic flow fields

Fuente: arXiv
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Main Authors: Rohde, Lisa, Quinn, Desmond J., Paul, Diptabrata, Cichos, Frank
Format: Preprint
Published: 2024
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author Rohde, Lisa
Quinn, Desmond J.
Paul, Diptabrata
Cichos, Frank
author_facet Rohde, Lisa
Quinn, Desmond J.
Paul, Diptabrata
Cichos, Frank
contents Regulation to a well-defined target state is a fundamental requirement for achieving reliable functionality in living systems and maintaining specific non-equilibrium states. The control of certain properties and functionalities of systems on the microscale presents a particular challenge since thermal fluctuations and environmental perturbations dominate. While synthetic active matter has demonstrated remarkable self-organization capabilities, examples of autonomous regulation processes at the single-particle level remain scarce. Here, we show that the interplay of two non-equilibrium processes leads to a regulated polarization state of active particles in local osmotic flow fields. The balance between thermophoretic repulsion and attraction by thermo-osmotic boundary flows, both generated by a single heat source, yields a steady state at which active particles encircle the heat source at a distance that depends on the temperature of the heat source. The balance of both temperature-induced processes causes a polarization of the active particles that is independent of the heat source temperature. The individual control of heat source and active particles in the experiment allows a detailed investigation of the self-regulated polarization effect in which we find that hydrodynamic interactions dominate. As the effects rely on osmotic flows and phoretic interactions, we expect that the observed phenomena can be generalized to other active systems and flow fields.
format Preprint
id arxiv_https___arxiv_org_abs_2412_10914
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Regulated polarization of active particles in local osmotic flow fields
Rohde, Lisa
Quinn, Desmond J.
Paul, Diptabrata
Cichos, Frank
Soft Condensed Matter
Regulation to a well-defined target state is a fundamental requirement for achieving reliable functionality in living systems and maintaining specific non-equilibrium states. The control of certain properties and functionalities of systems on the microscale presents a particular challenge since thermal fluctuations and environmental perturbations dominate. While synthetic active matter has demonstrated remarkable self-organization capabilities, examples of autonomous regulation processes at the single-particle level remain scarce. Here, we show that the interplay of two non-equilibrium processes leads to a regulated polarization state of active particles in local osmotic flow fields. The balance between thermophoretic repulsion and attraction by thermo-osmotic boundary flows, both generated by a single heat source, yields a steady state at which active particles encircle the heat source at a distance that depends on the temperature of the heat source. The balance of both temperature-induced processes causes a polarization of the active particles that is independent of the heat source temperature. The individual control of heat source and active particles in the experiment allows a detailed investigation of the self-regulated polarization effect in which we find that hydrodynamic interactions dominate. As the effects rely on osmotic flows and phoretic interactions, we expect that the observed phenomena can be generalized to other active systems and flow fields.
title Regulated polarization of active particles in local osmotic flow fields
topic Soft Condensed Matter
url https://arxiv.org/abs/2412.10914