Advances in Materials Physics and Chemistry

Volume 6, Issue 9 (September 2016)

ISSN Print: 2162-531X   ISSN Online: 2162-5328

Google-based Impact Factor: 0.65  Citations  h5-index & Ranking

Counterion Binding in Aqueous Solutions of Poly(vinylpyridines) as Assessed by Potentiometric Titration

HTML  XML Download Download as PDF (Size: 1250KB)  PP. 249-261  
DOI: 10.4236/ampc.2016.69025    1,928 Downloads   3,380 Views  Citations

ABSTRACT

The extent to which counterions bind to polyelectrolytes influences a variety of polymer-based applications, including polyelectrolyte enhanced ultrafiltration and forward osmosis using polyelectrolytes as draw agents. Potentiometric titrations of poly (2-vinylpyridine) (P2VP), poly (3-vinylpyridine) (P3VP), and poly (4-vinylpydine) (P4VP) were performed using HBr, HCl, HNO3, and HClO4 in both the presence and absence of added NaCl. Because of the systematic differences among the three polyelectrolytes, titration results provide insight into the role of polymer structure in the relative extents to which various counterions bind. Titration data reveal that ionization properties vary as functions of polymer investigated, titrant used, degree of protonation, and added salt concentration. Acid dissociation constants of the pyridinium moieties were found to generally increase with increasing degree of protonation, though appreciable differences were exhibited among the three polymers investigated. For all three polymers, Cl- demonstrated the lowest affinity for the charged pyridinium residues, while the affinities associated with Br- and NO-3 were nearly identical to each other. The relative extent of binding for CIO-4 varied across the polymers investigated, and was greatest for P4VP.

Share and Cite:

Roach, J. , Bondaruk, M. , Al-Abdulghani, A. and Shahrori, Z. (2016) Counterion Binding in Aqueous Solutions of Poly(vinylpyridines) as Assessed by Potentiometric Titration. Advances in Materials Physics and Chemistry, 6, 249-261. doi: 10.4236/ampc.2016.69025.

Cited by

[1] Assembly of polyelectrolyte star block copolymers at the oil–water interface
Nanoscale, 2023
[2] Neutralization Degree Effect on Potentiometric Behavior of Poly (N-octyl-4-vinylpyridinium Bromide)
Physical Chemistry …, 2023
[3] Molecular imprinted polymer for tramadol: Absorption and drug release studies
Polymer Engineering …, 2022
[4] Development of hydrogel based on Carboxymethyl cellulose/poly (4-vinylpyridine) for controlled releasing of fertilizers
BMC chemistry, 2022
[5] Polymer-Mediated Particle Coarsening within Hollow Silica Shell Nanoreactors
Chemistry of …, 2022
[6] Intelligent micro-vehicles for drug transport and controlled release to cancer cells
2021
[7] Nitrogen-doped carbon quantum dots obtained hydrothermally from citric acid and urea: The role of the specific nitrogen centers in their electrochemical and optical …
2021
[8] Light-promoted synthesis of surface-grafted polymers bearing pyridine groups by metal-free ATRP in microliter volumes
Polymer, 2021
[9] Ion Gating in Nanopore Electrode Arrays with Hierarchically Organized pH-Responsive Block Copolymer Membranes
2020
[10] pH‐Controlled Hierarchical Assembly/Disassembly of Multicompartment Micelles in Water
2020
[11] Poly (N-octyl-4-vinylpyridinium bromide) copolymers in aqueous solutions: potentiometric and thermodynamic studies
e-Polymers, 2018
[12] Supracolloidal chains of patchy micelles in water
Polymer Chemistry, 2018
[13] Phase Behavior of Poly(2-vinylpyridine)-block-Poly(4-vinylpyridine) Copolymers Containing Gold Nanoparticles
Macromolecules, 2017

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.