Salt and Temperature Effects on Xanthan Gum Polysaccharide in Aqueous Solutions
Emmanuel M. Nsengiyumva, Mark P. Heitz, Paschalis Alexandridis
International Journal of Molecular Sciences
Abstract
Xanthan gum (XG) is a carbohydrate polymer with anionic properties that is widely used as a rheology modifier in various applications, including foods and petroleum extraction. The aim was to investigate the effect of Na<sup>+</sup>, K<sup>+</sup>, and Ca<sup>2+</sup> on the physicochemical properties of XG in an aqueous solution as a function of temperature. Huggins, Kraemer, and Rao models were applied to determine intrinsic viscosity, [<i>η</i>], by fitting the relative viscosity (<i>η</i><sub>rel</sub>) or specific viscosity (<i>η</i><sub>sp</sub>) of XG/water and XG/salt/water solutions. With increasing temperature in water, Rao 1 gave [<i>η</i>] the closest to the Huggins and Kraemer values. In water, [<i>η</i>] was more sensitive to temperature increase (~30% increase in [<i>η</i>], 20-50 °C) compared to salt solutions (~15-25% increase). At a constant temperature, salt counterions screened the XG side-chain-charged groups and decreased [<i>η</i>] by up to 60% over 0.05-100 mM salt. Overall, Ca<sup>2+</sup> was much more effective than the monovalent cations in screening charge. As the salt valency and concentration increased, the XG coil radius decreased, making evident the effect of shielding the intramolecular and intermolecular XG anionic charge. The reduction in repulsive forces caused XG structural contraction. Further, higher temperatures led to chain expansion that facilitated increased intermolecular interactions, which worked against the salt effect.
Extracted Claims
6 claims extracted from this paper into the knowledge graph
Xanthan gum (XG) showed structural contraction due to reduction in repulsive forces
“The reduction in repulsive forces caused XG structural contraction.”
Xanthan gum (XG) showed decreased coil radius with increasing salt valency and concentration
“As the salt valency and concentration increased, the XG coil radius decreased, making evident the effect of shielding the intramolecular and intermolecular XG anionic charge.”
Xanthan gum (XG) showed decreased intrinsic viscosity by up to 60% over 0.05-100 mM salt
“At a constant temperature, salt counterions screened the XG side-chain-charged groups and decreased [η] by up to 60% over 0.05-100 mM salt.”