2016/10/31 by T. V. Sachin Krishnan, Thiba Krishnan, Ryuichi Okamoto +1
Biochemistry, Genetics and Molecular Biology · Chemistry · Medicine · Physics and Astronomy · #Bilayer #Blood properties and coagulation #Chemical physics #Chemistry #Classical mechanics #Curvature #Erythrocyte Function and Pathophysiology #Geometry #Instability #Lipid Membrane Structure and Behavior #Lipid bilayer #Lipid bilayer mechanics #Lipid bilayer phase behavior #Materials science #Mechanics #Membrane #Physics #Relaxation (psychology) #Thermodynamics #Vesicle #Viscosity #cond-mat.soft
paper · pdf · doi:10.1103/physreve.94.062414
published as Phys. Rev. E 94, 062414 (2016) · 16 pages, 6 figures
arxiv created 2016/12/10 · openalex publication_date 2016/12/30 · arxiv updated 2017/01/03 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05
We study the relaxation dynamics of a compressible bilayer vesicle with an asymmetry in the viscosity of the inner and outer fluid medium. First we explore the stability of the vesicle free energy which includes a coupling between the membrane curvature and the local density difference between the two monolayers. Two types of instabilities are identified: a small wavelength instability and a larger wavelength instability. Considering the bulk fluid viscosity and the inter-monolayer friction as the dissipation sources, we next employ Onsager's variational principle to derive the coupled equations both for the membrane and the bulk fluid. The three relaxation modes are coupled to each other due to the bilayer and the spherical structure of the vesicle. Most importantly, a higher fluid viscosity inside the vesicle shifts the crossover mode between the bending and the slipping to a larger value. As the vesicle parameters approach the unstable regions, the relaxation dynamics is dramatically slowed down, and the corresponding mode structure changes significantly. In some limiting cases, our general result reduces to the previously obtained relaxation rates.