Domain Growth and Aging in a Phase Separating Binary Fluid Confined Inside a Nanopore

Fuente: arXiv
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Main Authors: Basu, Saikat, Majumder, Suman, Paul, Raja, Das, Subir K.
Format: Preprint
Published: 2025
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_version_ 1866909879963222016
author Basu, Saikat
Majumder, Suman
Paul, Raja
Das, Subir K.
author_facet Basu, Saikat
Majumder, Suman
Paul, Raja
Das, Subir K.
contents Hydrodynamics is known to have strong effects on the kinetics of phase separation. There exist open questions on how such effects manifest in systems under confinement. Here, we have undertaken extensive studies of the kinetics of phase separation in a two-component fluid that is confined inside pores of cylindrical shape. Using a hydrodynamics-preserving thermostat, we carry out molecular dynamics simulations to obtain results for domain growth and aging for varying temperature and pore-width. We find that all systems freeze into a morphology where stripes of regions rich in one or the other component of the mixture coexist in a locked situation. Our analysis suggests that, irrespective of the temperature the growth of the average domain size, $\ell(t)$, prior to the freezing into stripped patterns, follows the power law $\ell(t)\sim t^{2/3}$, suggesting an inertial hydrodynamic growth, which typically is applicable for bulk fluids only in the asymptotic limit. Similarly, the aging dynamics, probed by the two-time order-parameter autocorrelation function, also exhibits a temperature-independent power-law scaling with an exponent $λ\simeq 2.55$, much smaller than what is observed for a bulk fluid.
format Preprint
id arxiv_https___arxiv_org_abs_2510_27283
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Domain Growth and Aging in a Phase Separating Binary Fluid Confined Inside a Nanopore
Basu, Saikat
Majumder, Suman
Paul, Raja
Das, Subir K.
Soft Condensed Matter
Statistical Mechanics
Hydrodynamics is known to have strong effects on the kinetics of phase separation. There exist open questions on how such effects manifest in systems under confinement. Here, we have undertaken extensive studies of the kinetics of phase separation in a two-component fluid that is confined inside pores of cylindrical shape. Using a hydrodynamics-preserving thermostat, we carry out molecular dynamics simulations to obtain results for domain growth and aging for varying temperature and pore-width. We find that all systems freeze into a morphology where stripes of regions rich in one or the other component of the mixture coexist in a locked situation. Our analysis suggests that, irrespective of the temperature the growth of the average domain size, $\ell(t)$, prior to the freezing into stripped patterns, follows the power law $\ell(t)\sim t^{2/3}$, suggesting an inertial hydrodynamic growth, which typically is applicable for bulk fluids only in the asymptotic limit. Similarly, the aging dynamics, probed by the two-time order-parameter autocorrelation function, also exhibits a temperature-independent power-law scaling with an exponent $λ\simeq 2.55$, much smaller than what is observed for a bulk fluid.
title Domain Growth and Aging in a Phase Separating Binary Fluid Confined Inside a Nanopore
topic Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2510.27283