Rheological properties of acid-induced carboxymethylcellulose hydrogels
arXiv:2406.04453 · doi:10.1007/s10570-024-06330-9
Abstract
Cellulose ethers represent a class of water-soluble polymers widely utilized across diverse sectors, spanning from healthcare to the construction industry. This experimental study specifically delves into aqueous suspensions of carboxymethylcellulose (CMC), a polymer that undergoes gel formation in acidic environments due to attractive interactions between hydrophobic patches along its molecular chain. We use rheometry to determine the linear viscoelastic properties of both CMC suspensions and acid-induced gels at various temperatures. Then, applying the time-temperature superposition principle, we construct master curves for the viscoelastic spectra, effectively described by fractional models. The horizontal shift factors exhibit an Arrhenius-like temperature dependence, allowing us to extract activation energies compatible with hydrophobic interactions. Furthermore, we show that acid-induced CMC gels are physical gels that display a reversible yielding transition under external shear. In particular, we discuss the influence of pH on the non-linear viscoelastic response under large-amplitude oscillatory shear. Overall, our results offer a comprehensive description of the linear and non-linear rheological properties of a compelling case of physical hydrogel involving hydrophobic interactions.
23 pages, 9 figures
References in corpus (4)
- Fingerprinting Soft Materials: A Framework for Characterizing Nonlinear Viscoelasticity
- Recent experimental probes of shear banding
- Ductile-to-brittle transition and yielding in soft amorphous materials: perspectives and open questions
- Critical-like gelation dynamics in cellulose nanocrystal suspensions