Precipitation of highly charged polyelectrolyte solutions in the presence of multivalent salts
- 1 October 1995
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 103 (13), 5781-5791
- https://doi.org/10.1063/1.470459
Abstract
Solutions of highly charged polyelectrolyte chains are described by a model that introduces ion condensation as a random charge along the polymer. The degree of condensation is obtained by solving the Poisson–Boltzmann equation with cylindrical geometry. Short range electrostatic attractions between the monomers via the condensed counterions of high enough valency lead to reversible chain precipitation. The range of polymer concentration over which salt‐free solutions are unstable is determined, as well as the miscibility of the chains when salt is added. Redissolution at high salt concentration is due to a screening of the short range electrostatic attractions. Precipitation of chains in mixtures of movalent and multivalent salts is also studied. We find the range of salt concentration where chains precipitate. The model explains the experimental results on the precipitation of sodium and lanthanum polystyrene sulfonate solutions in presence of multivalent salts [LaCl3 and Th(NO3)4].Keywords
This publication has 25 references indexed in Scilit:
- Phase Diagrams of Aqueous Solutions of Polycarboxylates in the Presence of Divalent CationsMacromolecules, 1994
- Random and Alternating PolyampholytesEurophysics Letters, 1993
- Precipitation effects in polyelectrolytes on addition of saltsJournal of Polymer Science Part B: Polymer Physics, 1993
- Thermodynamics of random copolymer meltsPhysical Review Letters, 1991
- Mean-field theory of concentrated polyelectrolyte solutions: Statics and dynamicsPhysical Review A, 1991
- Weakly charged polyelectrolytes in a poor solventJournal de Physique, 1990
- Formation of microdomains in a quenched disordered heteropolymerJournal de Physique, 1989
- A statistical theory of weakly charged polyelectrolytes: fluctuations, equation of state and microphase separationMacromolecules, 1988
- A universal coexistence curve for polymer solutionsJournal of Applied Physics, 1985
- Scaling relations for aqueous polyelectrolyte-salt solutions. 1. Quasi-elastic light scattering as a function of polyelectrolyte concentration and molar massMacromolecules, 1983