Aqdas Shehzad, M. T. Butt, Chaochao Hao, Sarmad Ali, Mudassar Maraj, Khurram Shehzad, Aili Wang, Weiqiang Fan, Hengbo Yin, Khalid Anojaidi, Waleed A. Alsuwaylih, Abdullah H. Almubarak, Mohammed A. Alsuwaylih
EGS was produced using modified Hummers’ method and characterized using FTIR, SEM, XRD, and BET analysis. Batch adsorption experiments assessed Pb 2+ and Cd 2+ adsorption under different concentrations, contact times, and temperatures. Adsorption mechanisms were analyzed via pseudo-second-order kinetics, Langmuir isotherm, and thermodynamic studies, and Pb 2+ (highly adsorbed) was optimized by Box-Behnken design of the RSM. EGS showed a sheet-like morphology with a pore size of 20.70 nm, surface area: 117.53 m 2 /g, with hydroxyl/oxygen functional groups, confirming the oxidation of graphite. The Langmuir R 2 > Freundlich, Dubinin–Radushkevich and Temkin adsorption isotherms directed monolayer adsorption, following the pseudo-second-order kinetics. due to low Weber-Morris R 2 values, confirmed absences of intra-particle diffusion with chemisorption dominance. The maximum adsorption capacities reached 186.79 mg/g for Pb 2+ and 153.65 mg/g for Cd 2+ at 65 °C, with thermodynamic spontaneity (ΔG < 0) and endothermicity (ΔH > 0). EGS showed higher Pb 2+ affinity, optimized by the Box-Behnken model, proving its effectiveness. EGS could be useful for wastewater treatment.