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Main Authors: Banerjee, Tirthankar, Desaleux, Thibault, Ranft, Jonas, Fodor, Étienne
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2407.19955
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author Banerjee, Tirthankar
Desaleux, Thibault
Ranft, Jonas
Fodor, Étienne
author_facet Banerjee, Tirthankar
Desaleux, Thibault
Ranft, Jonas
Fodor, Étienne
contents Inspired by dense contractile tissues, where cells are subject to periodic deformation, we formulate and study a generic hydrodynamic theory of pulsating active liquids. Combining mechanical and phenomenological arguments, we postulate that the mechanochemical feedback between the local phase, which describes how cells deform due to autonomous driving, and the local density can be described in terms of a free energy. We demonstrate that such a feedback is compatible with the coarse-graining of a broad class of microscopic models. Our hydrodynamics captures the three main states emerging in its particle-based counterparts: a globally cycling state, a homogeneous arrested state with constant phase, and a state with propagating radial waves. Remarkably, we show that the competition between these states can be rationalized intuitively in terms of an effective landscape, and argue that waves can be regarded as secondary instabilities. Linear stability analysis of the arrested and cycling states, including the role of fluctuations, leads to predictions for the phase boundaries. Overall, our results demonstrate that our minimal, yet non-trivial model provides a relevant platform to study the rich phenomenology of pulsating liquids.
format Preprint
id arxiv_https___arxiv_org_abs_2407_19955
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Hydrodynamics of pulsating active liquids
Banerjee, Tirthankar
Desaleux, Thibault
Ranft, Jonas
Fodor, Étienne
Soft Condensed Matter
Inspired by dense contractile tissues, where cells are subject to periodic deformation, we formulate and study a generic hydrodynamic theory of pulsating active liquids. Combining mechanical and phenomenological arguments, we postulate that the mechanochemical feedback between the local phase, which describes how cells deform due to autonomous driving, and the local density can be described in terms of a free energy. We demonstrate that such a feedback is compatible with the coarse-graining of a broad class of microscopic models. Our hydrodynamics captures the three main states emerging in its particle-based counterparts: a globally cycling state, a homogeneous arrested state with constant phase, and a state with propagating radial waves. Remarkably, we show that the competition between these states can be rationalized intuitively in terms of an effective landscape, and argue that waves can be regarded as secondary instabilities. Linear stability analysis of the arrested and cycling states, including the role of fluctuations, leads to predictions for the phase boundaries. Overall, our results demonstrate that our minimal, yet non-trivial model provides a relevant platform to study the rich phenomenology of pulsating liquids.
title Hydrodynamics of pulsating active liquids
topic Soft Condensed Matter
url https://arxiv.org/abs/2407.19955