Curvature fluctuations of fluid vesicles reveal hydrodynamic dissipation within the bilayer

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Faizi, Hammad A., Granek, Rony, Vlahovska, Petia M.
Format: Preprint
Published: 2022
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916314274070528
author Faizi, Hammad A.
Granek, Rony
Vlahovska, Petia M.
author_facet Faizi, Hammad A.
Granek, Rony
Vlahovska, Petia M.
contents The biological function of membranes is closely related to their softness, which is often studied through the membranes' thermally-driven fluctuations. The analysis commonly assumes that the relaxation rate of a pure bending deformation is determined by the competition between membrane bending rigidity and viscous dissipation in the surrounding medium. Here, we reexamine this assumption and demonstrate that viscous flows within the membrane dominate the dynamics of bending fluctuations of non-planar membranes with a radius of curvature smaller than the Saffman-Delbrück length. Using flickering spectroscopy of giant vesicles made of DPPC:Cholesterol mixtures and pure diblock-copolymer membranes, we experimentally detect the signature of membrane dissipation in curvature fluctuations, and show that membrane viscosity can be reliably obtained from the short time behavior of the shape time correlations. The results indicate that the DPPC:Cholesterol membranes behave as a Newtonian fluid, while polymer membranes exhibit more complex rheology. Our study provides physical insights into the time scales of curvature remodeling of biological and synthetic membranes.
format Preprint
id arxiv_https___arxiv_org_abs_2208_07966
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Curvature fluctuations of fluid vesicles reveal hydrodynamic dissipation within the bilayer
Faizi, Hammad A.
Granek, Rony
Vlahovska, Petia M.
Soft Condensed Matter
Fluid Dynamics
The biological function of membranes is closely related to their softness, which is often studied through the membranes' thermally-driven fluctuations. The analysis commonly assumes that the relaxation rate of a pure bending deformation is determined by the competition between membrane bending rigidity and viscous dissipation in the surrounding medium. Here, we reexamine this assumption and demonstrate that viscous flows within the membrane dominate the dynamics of bending fluctuations of non-planar membranes with a radius of curvature smaller than the Saffman-Delbrück length. Using flickering spectroscopy of giant vesicles made of DPPC:Cholesterol mixtures and pure diblock-copolymer membranes, we experimentally detect the signature of membrane dissipation in curvature fluctuations, and show that membrane viscosity can be reliably obtained from the short time behavior of the shape time correlations. The results indicate that the DPPC:Cholesterol membranes behave as a Newtonian fluid, while polymer membranes exhibit more complex rheology. Our study provides physical insights into the time scales of curvature remodeling of biological and synthetic membranes.
title Curvature fluctuations of fluid vesicles reveal hydrodynamic dissipation within the bilayer
topic Soft Condensed Matter
Fluid Dynamics
url https://arxiv.org/abs/2208.07966