Developing cost‐effective and reusable adsorbents is critical for sustainable wastewater remediation. This study addresses this need by presenting a sonochemically synthesized CuO‐sulfonated charcoal nanocomposite (CuO@charcoal‐SO 3 H) for the efficient removal of Congo red dye (CR). Different analytical tools are used to confirm the structure of as‐ prepared materials. The composite achieved a high specific surface area (465.2 m 2 /g) and an enhanced adsorption capacity of 355.8 mg/g, surpassing both pristine charcoal (300.1 mg/g) and sulfonated charcoal (325.6 mg/g). Under optimal conditions (pH 6, 30°C, 0.5 g/L adsorbent dose, 180 min), adsorption followed pseudo‐second‐order kinetics ( R 2 = 0.998, k 2 = 0.0062 g/mg min), indicating chemisorption as the dominant mechanism. Thermodynamic analysis confirmed a spontaneous and endothermic process, with Δ G = −10.50 kJ/mol, Δ H = 31.75 kJ/mol, and Δ S = 98.55 J/mol K. The nanocomposite maintained 85% efficiency over five regeneration cycles and demonstrated economic viability with a production cost of 0.32–0.65 USD/g. These results establish CuO@Charcoal‐SO 3 H as a high‐performance, reusable, and cost‐effective adsorbent for industrial dye removal.
Morshedy et al. (2026) studied this question.
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