Wastewater streams from industrial sources contain various dissolved organic pollutants that pose environmental contamination challenges even at extremely low concentrations if discharged. Porous materials, such as graphene-based functional frameworks, have been demonstrated to efficiently adsorb such contaminants, but significant scope remains to improve their adsorption efficiency, versatility and reusability. We have recently developed the graphene oxide vortex-ring (GO-VR) particles, whose unique ‘donut’ shape has been shown to deliver exceptional adsorptive removal efficiency. In this study, we further develop a carboxymethylcellulose (CMC)- functionalised GO-VR particle system that achieves ambi-functional adsorptive removal of cationic and anionic model dyes, methylene blue (MB) and methyl orange (MO). Various key factors affecting the adsorption process, including pH, adsorbent dose, particle shape, contact time, and initial dye concentration, are optimised and investigated. The optimum values of pH for MB and MO adsorption are 10 and 6, respectively, at which the adsorption capacity of GO/CMC-VR particles for MB and MO are 988 ± 5.84 mg/g and 783 ± 13 mg/g, respectively, resulting in 100% contaminant removal even at very low contaminant concenration of 5 ppm and using a very low adsorbant dose of 0.005 mg/ml. The pseudo-second-order kinetic adsorption model fits well to the fast remediation rates, confirming that the driving force is predominantly electrostatic. Furthermore, we demonstrate that the particles can be regenerated in an elution cycle and reused in adsorption-desorption cycles, retaining their high adsorption efficiency and improving the sustainability of this approach. GO/CMC-VR particles are rapidly emerging as a promising universal adsorbent for the remediation of dissolved pollutants from wastewater. • GO/CMC-VR with a donut-shape particle is synthesised. • CMC functionalization enables dual removal of cationic and anionic azo dyes. • High adsorption capacities achieved for MB and MO at optimised pH. • Fully dye removal at ultra-low adsorbent dosage and low contaminant concentration. • Rapid kinetics and excellent regeneration ensure sustainable use.
Hossain et al. (Sun,) studied this question.