Direct observation of the transition to counterion condensation
- 1 February 1984
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 80 (3) , 1334-1339
- https://doi.org/10.1063/1.446814
Abstract
Direct observation of the transition to counterion condensation is demonstrated by measurement of the electrophoretic mobility of 6, 6-ionene, a polyelectrolyte of charge spacing 8.7 Å, under conditions of varying dielectric constant. In this way, the reduced charge density parameter ξ can be varied between 0.82 and 1.85. At precisely ξ=1, we observed a drop in the electrophoretic mobility of greater than a factor of 2. Independent viscosity experiments were used to verify that the polymer does not undergo a major conformational transition under these conditions. The reduction of electrophoretic mobility, presumably the result of the reduction of charge density by counterion condensation, is substantially greater in magnitude than current theories of counterion condensation theory would predict. It is suggested that the physical basis for the departure from theory is the fact that near ξ=1, the spacing of condensed counterions predicted by counterion condensation theory is greater than the Debye screening length.Keywords
This publication has 39 references indexed in Scilit:
- Equilibrium dialysis studies of polyamine binding to DNABiopolymers, 1982
- Effect of polyelectrolyte charge density on calcium ion activity coefficients and additivity in aqueous solutions of calcium acrylamide-acrylic acid copolymersMacromolecules, 1981
- Polyelectrolyte theory. 3. The surface potential in mixed-salt solutionsThe Journal of Physical Chemistry, 1981
- Interactions of sodium ions with the sodium salts of poly(acrylic acid/acrylamide) copolymers of varying charge densityMacromolecules, 1981
- Solution Properties of Novel PolyelectrolytesMacromolecules, 1972
- Limiting Laws and Counterion Condensation in Polyelectrolyte Solutions. III. An Analysis Based on the Mayer Ionic Solution TheoryThe Journal of Chemical Physics, 1969
- Ionene polymers. II. Formation of cyclic and linear compounds or polymers from N,N,N′,N′‐tetramethyl‐α,ω‐diaminoalakanes and α,ω‐dibromoalkanesJournal of Polymer Science Part B: Polymer Letters, 1969
- Nonconvective Ionic Flow in Fixed-Charge SystemsThe Journal of Chemical Physics, 1967
- Cluster Theory of Polyelectrolyte Solutions. I. Activity Coefficients of the Mobile IonsThe Journal of Chemical Physics, 1965
- DIELECTRIC CONSTANTS OF SOME ORGANIC SOLVENT-WATER MIXTURES AT VARIOUS TEMPERATURESJournal of the American Chemical Society, 1932