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Updated: Sep 3, 2026

Removal of Arsenic Using a Cationic Polymer Gel Impregnated with Iron Hydroxide
Published on: June 28, 2019
Surface-functionalized granular activated carbon with enhanced interfacial hydrophobicity and electrostatic capture
Hao Xin1, Jian Ao1, Yangtao Wu1
1Hunan Engineering Research Center of Water Security Technology and Application, College of Civil Engineering, Hunan University, Changsha 410082, China.
Abstract:
Perchlorate (ClO4⁻) is a persistent and toxic oxyanion widely used in military and industrial activities, posing a crucial challenge in drinking water treatment due to its high solubility and chemical stability. To meet increasingly stringent regulatory limits, adsorbents suitable for full-scale treatment must reconcile high selectivity, rapid kinetics and material safety. Herein, we develop a modified granular activated carbon (GAC) using poly(diallyldimethylammonium chloride) (PDDA), a cationic polyelectrolyte widely used in water-treatment processes. The PDDA-GAC exhibits high ClO4⁻ selectivity against common competing anions and rapid adsorption kinetics, reaching saturation within 10 min. The remarkable performance is attributed to a unique surface-confined functionalization. The enhanced surface hydrophobicity (water contact angle: 71.2°) favors the enrichment of weakly hydrated ClO4⁻, which is then rapidly captured via strong electrostatic interaction (∼70 kcal mol-1) with readily accessible quaternary ammonium groups, minimizing intraparticle diffusion resistance. In fixed-bed treatment of source water containing 500 μg L-1 ClO4⁻, PDDA-GAC increases the treatable volume before breakthrough at 70 μg L-1 from 950 to 3250 bed volumes, compared to pristine GAC, and maintains excellent reusability. Overall, this work provides an efficient, rapid, and safe adsorbent platform with strong potential for full-scale ClO4⁻ removal.
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