Fluctuations of driven probes reveal nonequilibrium transitions in complex fluids

Fuente: arXiv
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Main Authors: Forastiere, Danilo, Locatelli, Emanuele, Falasco, Gianmaria, Orlandini, Enzo, Baiesi, Marco
Format: Preprint
Published: 2024
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_version_ 1866914196085538816
author Forastiere, Danilo
Locatelli, Emanuele
Falasco, Gianmaria
Orlandini, Enzo
Baiesi, Marco
author_facet Forastiere, Danilo
Locatelli, Emanuele
Falasco, Gianmaria
Orlandini, Enzo
Baiesi, Marco
contents Complex fluids subjected to localized microscopic energy inputs, typical of active microrheology setups, exhibit poorly understood nonequilibrium behaviors because of the intricate self-organization of their mesoscopic constituents. In this work we show how to identify changes in the microstructural conformation of the fluid by monitoring the variance of the probe position, based on a general method grounded in the breakdown of the equipartition theorem. To illustrate our method, we perform large-scale Brownian dynamics simulations of an effective model of micellar solution, and we link the different scaling regimes in the variance of the probe's position to the transitions from diffusive to jump dynamics, where the fluid intermittently relaxes the accumulated stress. This suggests stored elastic stress may be the physical mechanism behind the nonlinear friction curves recently measured in micellar solutions, pointing at a mechanism for the observed multi-step rheology. Our approach overcomes the limitations of continuum macroscopic descriptions and introduces an empirical method, applicable in experiments, to detect nonequilibrium transitions in the structure of complex fluids.
format Preprint
id arxiv_https___arxiv_org_abs_2411_08817
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Fluctuations of driven probes reveal nonequilibrium transitions in complex fluids
Forastiere, Danilo
Locatelli, Emanuele
Falasco, Gianmaria
Orlandini, Enzo
Baiesi, Marco
Statistical Mechanics
Soft Condensed Matter
Complex fluids subjected to localized microscopic energy inputs, typical of active microrheology setups, exhibit poorly understood nonequilibrium behaviors because of the intricate self-organization of their mesoscopic constituents. In this work we show how to identify changes in the microstructural conformation of the fluid by monitoring the variance of the probe position, based on a general method grounded in the breakdown of the equipartition theorem. To illustrate our method, we perform large-scale Brownian dynamics simulations of an effective model of micellar solution, and we link the different scaling regimes in the variance of the probe's position to the transitions from diffusive to jump dynamics, where the fluid intermittently relaxes the accumulated stress. This suggests stored elastic stress may be the physical mechanism behind the nonlinear friction curves recently measured in micellar solutions, pointing at a mechanism for the observed multi-step rheology. Our approach overcomes the limitations of continuum macroscopic descriptions and introduces an empirical method, applicable in experiments, to detect nonequilibrium transitions in the structure of complex fluids.
title Fluctuations of driven probes reveal nonequilibrium transitions in complex fluids
topic Statistical Mechanics
Soft Condensed Matter
url https://arxiv.org/abs/2411.08817