ArticleScientific reports2026
Sustainable hard water treatment using talc derived magnesium silicate zeolite evaluated by statistical physics and field validation in Siwa Oasis.
Article in Scientific reports, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Groundwater in Egypt’s Siwa Oasis exhibits extreme hardness (total ≈ 3312.6 mg/L as CaCO3; Mg2+ ≈ 609.5 mg/L, Ca2+ ≈ 325.4 mg/L), far above guideline values and problematic for health and infrastructure. We report a sustainable softening approach using magnesium-silicate zeolite (Mg.ZA) synthesized from natural talc via alkali fusion (550 °C, 5 h) and mild hydrothermal conversion, producing LTA-type crystallinity with mesoporosity and high surface area (187 m2/g). Performance was evaluated under batch and fixed-bed (continuous-flow) conditions and interpreted with statistical-physics modeling. In batch at pH 7, Mg.ZA achieved 268.8 mg/g (Ca2+) and 206.9 mg/g (Mg2+), following pseudo-first-order kinetics and Langmuir isotherms, indicating physisorption-dominated, near-monolayer uptake. In fixed-bed tests with synthetic and real Siwa groundwater (flow 5 mL/min; pH ≈ 7; bed depth 1–3 cm), increasing bed depth to 3 cm extended breakthrough and raised dynamic capacities to ~ 279.6 mg/g (Ca2+) and ~ 227.8 mg/g (Mg2+); breakthrough and saturation were defined at 10% and 95%, respectively. Field relevance was demonstrated by treating real Siwa groundwater, reducing Ca2+/Mg2+ to acceptable levels across reuse cycles and confirming regenerability. The statistical-physics analysis quantified multi-ionic site occupancy (n > 2) and Qsat consistent with experiments (~ 269 mg/g Ca2+; ~207 mg/g Mg2+), with low adsorption energies (ΔE < 8 kJ/mol) supporting reversible, multilayer physisorption. Collectively, talc-derived Mg.ZA offers a cost-effective, eco-friendly, and scalable adsorbent capable of softening high-hardness groundwater under realistic conditions, supporting decentralized treatment in arid, resource-limited regions.
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