Active matter under control: Insights from response theory

Fuente: arXiv
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Main Authors: Davis, Luke K., Proesmans, Karel, Fodor, Étienne
Format: Preprint
Published: 2023
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author Davis, Luke K.
Proesmans, Karel
Fodor, Étienne
author_facet Davis, Luke K.
Proesmans, Karel
Fodor, Étienne
contents Active constituents burn fuel to sustain individual motion, giving rise to collective effects that are not seen in systems at thermal equilibrium, such as phase separation with purely repulsive interactions. There is a great potential in harnessing the striking phenomenology of active matter to build novel controllable and responsive materials that surpass passive ones. Yet, we currently lack a systematic roadmap to predict the protocols driving active systems between different states in a way that is thermodynamically optimal. Equilibrium thermodynamics is an inadequate foundation to this end, due to the dissipation rate arising from the constant fuel consumption in active matter. Here, we derive and implement a versatile framework for the thermodynamic control of active matter. Combining recent developments in stochastic thermodynamics and nonequilibrium response theory, our approach shows how to find the optimal control for either continuous- or discrete-state active systems operating arbitrarily far from equilibrium. Our results open the door to designing novel active materials which are not only built to stabilize specific nonequilibrium collective states, but are also optimized to switch between different states at minimum dissipation.
format Preprint
id arxiv_https___arxiv_org_abs_2305_11078
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Active matter under control: Insights from response theory
Davis, Luke K.
Proesmans, Karel
Fodor, Étienne
Statistical Mechanics
Soft Condensed Matter
Active constituents burn fuel to sustain individual motion, giving rise to collective effects that are not seen in systems at thermal equilibrium, such as phase separation with purely repulsive interactions. There is a great potential in harnessing the striking phenomenology of active matter to build novel controllable and responsive materials that surpass passive ones. Yet, we currently lack a systematic roadmap to predict the protocols driving active systems between different states in a way that is thermodynamically optimal. Equilibrium thermodynamics is an inadequate foundation to this end, due to the dissipation rate arising from the constant fuel consumption in active matter. Here, we derive and implement a versatile framework for the thermodynamic control of active matter. Combining recent developments in stochastic thermodynamics and nonequilibrium response theory, our approach shows how to find the optimal control for either continuous- or discrete-state active systems operating arbitrarily far from equilibrium. Our results open the door to designing novel active materials which are not only built to stabilize specific nonequilibrium collective states, but are also optimized to switch between different states at minimum dissipation.
title Active matter under control: Insights from response theory
topic Statistical Mechanics
Soft Condensed Matter
url https://arxiv.org/abs/2305.11078