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Beyond Salt Resistance: Ion-Specific Modulation of Microstructure and Rheology of Sepiolite Dispersions
Guanzheng Zhuang1, Qian Liu1, Bin Xiao1
1School of Environmental Science and Engineering, Guangdong University of Technology, Guangzhou 510006, China.
Abstract:
Sepiolite, a fibrous clay mineral, is highly valued for its ability to form gel networks and control rheology in saline environments. However, the ion-specific effects governing this behavior are not fully understood. This study systematically investigates the influence of four common electrolytes (NaCl, KCl, CaCl2, and MgCl2) across a wide concentration range (10-4 to 1 mol/L) on the colloidal stability, microstructure, and rheological behaviors of 5 wt % sepiolite dispersions. While all dispersions remained macroscopically stable against sedimentation, their rheological properties, including viscosity, yield stress, and thixotropy, showed a nonmonotonic trend. These properties initially decreased at low salt concentrations due to electrical double layer compression and subsequent network weakening, followed by a partial recovery at higher concentrations driven by van der Waals-induced aggregation. Cryo-scanning electron microscopy visualized the corresponding microstructural transition from a fine fiber network to an aggregated structure. The effects were ion-specific: divalent cations (Ca2+, Mg2+) caused more significant changes than monovalent cations (Na+, K+), with K+ proving more effective at screening charge than Na+. Low-field nuclear magnetic resonance showed that the mobility of water confined within interparticle pores remained constant. These findings explain the system's ability to retain water and maintain a gel-like structure despite microstructural changes. This work provides a framework that links ion-specific interactions to multiscale structural and rheological changes, offering insights into the formulation of sepiolite-based fluids.
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