Where the linearized Poisson–Boltzmann cell model fails: Spurious phase separation in charged colloidal suspensions
- 15 July 2003
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 119 (3) , 1855-1865
- https://doi.org/10.1063/1.1579676
Abstract
The Poisson–Boltzmann (PB) spherical Wigner–Seitz cell model—introduced to theoretically describe suspensions of spherical charged colloidal particles—is investigated at the nonlinear and linearized levels. The linearization of the mean-field PB functional yields linearized Debye–Hückel-type equations agreeing asymptotically with the nonlinear PB results in the weak-coupling (high-temperature) limit. Both the canonical (fixed number of microions) as well as the semigrand-canonical (in contact with an infinite salt reservoir) cases are considered and discussed in a unified linearized framework. In disagreement with the exact nonlinear PB solution inside a Wigner–Seitz cell, the linearized theory predicts the occurrence of a thermodynamical instability with an associated phase separation of the homogeneous suspension into dilute (gas) and dense (liquid) phases, being thus a spurious result of the linearization. We show that these artifacts, although thermodynamically consistent with quadratic expansions of the nonlinear functional and osmotic pressure, may be traced back to the nonfulfillment of the underlying assumptions of the linearization. This raises questions about the reliability of the prediction of gas/liquid-like phase separation in deionized aqueous suspensions of charged colloids mediated by monovalent counterions obtained by linearized theories.Keywords
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This publication has 72 references indexed in Scilit:
- Volume-term theories, Sogami-Ise potential, and the Langmuir model for phase separation in macroion systems: A resolutionPhysical Review E, 2002
- The phase behavior of charged colloidal systems in the mean spherical approximationThe Journal of Chemical Physics, 2002
- Phase Separation in Deionized Colloidal Systems: Extended Debye−Hückel TheoryLangmuir, 2001
- How Homogeneous Are “Homogeneous Dispersions”? Counterion-Mediated Attraction between Like-Charged SpeciesLangmuir, 1999
- Phase diagram of charge-stabilized colloidal suspensions: van der Waals instability without attractive forcesPhysical Review E, 1999
- When Like Charges Attract: The Effects of Geometrical Confinement on Long-Range Colloidal InteractionsPhysical Review Letters, 1996
- Melting of Metastable Crystallites in Charge-Stabilized Colloidal SuspensionsPhysical Review Letters, 1996
- On the use of the Gibbs free energy in macroionic solutionsThe Journal of Chemical Physics, 1988
- On the electrostatic interaction in macroionic solutions and suspensionsThe Journal of Chemical Physics, 1987
- Ordered structure in dilute solutions of highly charged polymer lattices as studied by microscopy. I. Interparticle distance as a function of latex concentrationThe Journal of Chemical Physics, 1983