Issue 40, 2021

Thermodynamic non-ideality in charge regulation of weak polyelectrolytes

Abstract

Polymer ionization differs from that for their monomeric counterparts due to intramolecular correlations. Such effects are conventionally described in terms of the site-binding model that accounts for short-range interactions between neighboring sites. With an apparent equilibrium constant for each ionizable group and the nearest-neighbor energy as adjustable parameters, the site-binding method is useful to correlate experimental titration curves when the site–site interactions are insignificant at long ranges. This work aims to describe the electrostatic behavior of weak polyelectrolytes in aqueous solutions on the basis of the intrinsic equilibrium constants of the individual ionizable groups and solution conditions underlying the thermodynamic non-ideality. A molecular thermodynamic model is proposed for the protonation of weak polyelectrolytes by incorporating classical density functional theory into the site-binding model to account for the effects of the local ionic environment on both inter-chain and intra-chain correlations. By an extensive comparison of theoretical predictions with experimental titration curves, we demonstrate that the thermodynamic model is able to quantify the ionization behavior of weak polyelectrolytes over a broad range of molecular architectures and solution conditions.

Graphical abstract: Thermodynamic non-ideality in charge regulation of weak polyelectrolytes

Supplementary files

Article information

Article type
Paper
Submitted
08 Jun 2021
Accepted
30 Aug 2021
First published
31 Aug 2021

Soft Matter, 2021,17, 9221-9234

Author version available

Thermodynamic non-ideality in charge regulation of weak polyelectrolytes

A. Gallegos, G. M. C. Ong and J. Wu, Soft Matter, 2021, 17, 9221 DOI: 10.1039/D1SM00848J

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