Charged Membranes: Poisson-Boltzmann theory, DLVO paradigm and beyond
arXiv:1603.09451 · doi:10.1201/9780429194078
Abstract
In this chapter we review the electrostatic properties of charged membranes in aqueous solutions, with or without added salt, employing simple physical models. The equilibrium ionic profiles close to the membrane are governed by the well-known Poisson-Boltzmann (PB) equation. We analyze the effect of different boundary conditions, imposed by the membrane, on the ionic profiles and the corresponding osmotic pressure. The discussion is separated into the single membrane case and that of two interacting membranes. For one membrane setup, we show the different solutions of the PB equation and discuss the interplay between constant-charge and constant-potential boundary conditions. A modification of the PB theory is presented to treat the extremely high counter-ion concentration in the vicinity of a charge membrane. For two equally-charged membranes, we analyze the different pressure regimes for the constant-charge boundary condition, and discuss the difference in the osmotic pressure for various boundary conditions. The non-equal charged membranes is reviewed as well, and the crossover from repulsion to attraction is calculated analytically. We then examine the charge-regulation boundary condition and discuss its effects on the ionic profiles and the osmotic pressure for two equally-charged membranes. In the last section, we briefly review the van der Waals (vdW) interactions and their effect on the free energy between two planar membranes. We explain the simple Hamaker pair-wise summation procedure, and introduce the more rigorous Lifshitz theory. The latter is a key ingredient in the DLVO theory, which combines repulsive electrostatic with attractive vdW interactions, and offers a simple explanation for colloidal or membrane stability. Finally, the chapter ends by a short account of the limitations of the approximations inherent in the PB theory.
57 pages, 19 figures, From the forthcoming Handbook of Lipid Membranes: Molecular, Functional, and Materials Aspects. Edited by Cyrus Safinya and Joachim Radler, Taylor & Francis/CRC Press, 2016
References in corpus (1)
Cited by in corpus (20)
- Screening length for finite-size ions in concentrated electrolytes
- Bjerrum Pairs in Ionic Solutions: a Poisson-Boltzmann Approach
- Charge Oscillations in Ionic Liquids: A Microscopic Cluster Model
- Spontaneous symmetry breaking of charge-regulated surfaces
- Modulation of elasticity and interactions in charged lipid multibilayers: monovalent salt solutions
- Curvature effects in charge-regulated lipid bilayers
- Charge separation at liquid interfaces
- Charge regulation radically modifies electrostatics in membrane stacks
- Complex coupling between surface charge and thermo-osmotic phenomena
- Interactions between Charged Particles with bathing Multivalent Counterions: Experiments {\it vs} Dressed Ion Theory
- Interaction between charge-regulated metal nanoparticles in an electrolyte solution
- Surface Tension of Acid Solutions: Fluctuations beyond the Non-linear Poisson-Boltzmann Theory
- Osmotic pressure between arbitrarily charged surfaces: a revisited approach
- Unveiling the Interstitial Pressure Between Growing Ice Crystals During Ice-Templating Using a Lipid Lamellar Probe
- Surface Pressure of Charged Colloids at the Air/Water Interface
- Mean-field theory of active electrolytes: dynamic adsorption and overscreening
- Brownian motion of a charged colloid in restricted confinement
- Primary and Secondary Hydration Forces between Interdigitated Membranes Composed of Bolaform Microbial Glucolipids
- Curvature effects in interfacial acidity of amphiphilic vesicles
- Modeling ionic flow between small targets: insights from diffusion and electro-diffusion theory