Mechano-chemical effects in weakly charged porous media

Adv Colloid Interface Sci. 2015 Aug:222:779-801. doi: 10.1016/j.cis.2014.09.006. Epub 2014 Oct 2.

Abstract

The paper is concerned with mechano-chemical effects, namely, osmosis and pressure-driven separation of ions that can be observed when a charged porous medium is placed between two electrolyte solutions. The study is focused on porous systems with low equilibrium interfacial potentials (about 30 mV or lower). At such low potentials, osmosis and pressure-driven separation of ions noticeably manifest themselves provided that the ions in the electrolyte solutions have different diffusion coefficients. The analysis is conducted by combining the irreversible thermodynamic approach and the linearized (in terms of the normalized equilibrium interfacial potential) version of the Standard Electrokinetic Model. Osmosis and the pressure-driven separation of ions are considered for an arbitrary mixed electrolyte solution and various porous space geometries. It is shown that the effects under consideration are proportional to a geometrical factor which, for all the considered geometries of porous space, can be expressed as a function of porosity and the Λ- parameter of porous medium normalized by the Debye length. For all the studied geometries, this function turns out to be weakly dependent on both the porosity and the geometry type. The latter allows for a rough evaluation of the geometrical factor from experimental data on electric conductivity and hydraulic permeability without previous knowledge of the porous space geometry. The obtained results are used to illustrate how the composition of electrolyte solution affects the mechano-chemical effects. For various examples of electrolyte solution compositions, the obtained results are capable of describing positive, negative and anomalous osmosis, positive and negative rejection of binary electrolytes, and pressure-driven separation of binary electrolyte mixtures.

Keywords: Conductivity formation factor; Darcy coefficient; Osmosis; Pressure driven separation; Reflection coefficient; Standard electrokinetic model.

Publication types

  • Research Support, Non-U.S. Gov't
  • Review

MeSH terms

  • Electrolytes / chemistry
  • Osmosis*
  • Porosity
  • Pressure*
  • Thermodynamics

Substances

  • Electrolytes