Lateral hydrodynamics in supported membranes: The Evans-Sackmann model and its extensions

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Autori principali: Hosaka, Yuto, Andelman, David, Komura, Shigeyuki
Natura: Preprint
Pubblicazione: 2026
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author Hosaka, Yuto
Andelman, David
Komura, Shigeyuki
author_facet Hosaka, Yuto
Andelman, David
Komura, Shigeyuki
contents We review the theoretical development and modern applications of the Evans-Sackmann hydrodynamic model for lateral transport in supported fluid membranes. We first cover the original formulation, emphasizing the linear momentum decay term that captures membrane-substrate coupling mediated by a thin lubricating fluid layer. This coupling term enables quantitative interpretation of tracer diffusion measurements in supported bilayers. Building on this foundation, we survey theoretical extensions that relax standard boundary conditions at the inclusion perimeter, where inclusions refer to embedded objects such as proteins, lipid domains, or tracer particles within the membrane. We discuss the drag of a disk and a liquid domain, as well as the dynamics of membrane phase separation. We further highlight how the supported-membrane mobility tensor serves as a unifying tool for systematic treatments of correlated diffusion, polymer dynamics, phase separation kinetics, and many-body interactions in quasi-two-dimensional environments. Finally, we discuss recent extensions to active and chiral membranes, where odd viscosity provides a transverse hydrodynamic response and offers a possible route for detecting chirality in two-dimensional fluids.
format Preprint
id arxiv_https___arxiv_org_abs_2605_17917
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Lateral hydrodynamics in supported membranes: The Evans-Sackmann model and its extensions
Hosaka, Yuto
Andelman, David
Komura, Shigeyuki
Soft Condensed Matter
Fluid Dynamics
We review the theoretical development and modern applications of the Evans-Sackmann hydrodynamic model for lateral transport in supported fluid membranes. We first cover the original formulation, emphasizing the linear momentum decay term that captures membrane-substrate coupling mediated by a thin lubricating fluid layer. This coupling term enables quantitative interpretation of tracer diffusion measurements in supported bilayers. Building on this foundation, we survey theoretical extensions that relax standard boundary conditions at the inclusion perimeter, where inclusions refer to embedded objects such as proteins, lipid domains, or tracer particles within the membrane. We discuss the drag of a disk and a liquid domain, as well as the dynamics of membrane phase separation. We further highlight how the supported-membrane mobility tensor serves as a unifying tool for systematic treatments of correlated diffusion, polymer dynamics, phase separation kinetics, and many-body interactions in quasi-two-dimensional environments. Finally, we discuss recent extensions to active and chiral membranes, where odd viscosity provides a transverse hydrodynamic response and offers a possible route for detecting chirality in two-dimensional fluids.
title Lateral hydrodynamics in supported membranes: The Evans-Sackmann model and its extensions
topic Soft Condensed Matter
Fluid Dynamics
url https://arxiv.org/abs/2605.17917