posted on 2025-05-09, 17:20authored byJonathan Suazo-Hernández, Karen Manquián-Cerda, María de la Luz Mora, Mauricio Molina-Roco, María Angélica Rubio, Binoy Sarkar, Nanthi Bolan, Nicolás Arancibia-Miranda
Nanoscale zero-valent iron (NZVI) and NZVI supported onto montmorillonite (NZVI-Mt) were synthetized and used in this study to remove Se<sup>VI</sup> and As<sup>V</sup> from water in mono- and binary-adsorbate systems. The adsorption kinetics and isotherm data for Se<sup>VI</sup> and As<sup>V</sup> were adequately described by the pseudo-second-order (PSO) (r<sup>2</sup>>0.94) and Freundlich (r<sup>2</sup>>0.93) equations. Results from scanning electron microscopy showed that the dimension of the NZVI immobilized on the Mt was smaller than pure NZVI. Using 0.05 g of adsorbent and an initial 200 mg L<sup>−1</sup> As<sup>V</sup> and Se<sup>VI</sup> concentration, the maximum adsorption capacity (q<sub>max</sub> and partition coefficient (PC) for As<sup>V</sup> on NZVI-Mt in monocomponent system were 54.75 mg g<sup>-1</sup> and 0.065 mg g<sup>-1</sup>·μM<sup>-1</sup>, which dropped respectively to 49.91 mg g<sup>-1</sup> and 0.055 mg g<sup>-1</sup>·μM<sup>-1</sup> under competitive system. For Se<sup>VI</sup> adsorption on NZVI-Mt in monocomponent system, q<sub>max</sub> and PC were 28.63 mg g<sup>-1</sup> and 0.024 mg g<sup>-1</sup>·μM<sup>-1</sup>, respectively. Values of q<sub>max</sub> and PC were higher for NZVI-Mt than NZVI and montmorillonite, indicating that the nanocomposite contained greater adsorption sites for removing both oxyanions, but with a marked preference for As<sup>V</sup>. Future research should evaluate the effect of different operational variables on the removal efficiency of both oxyanions by NZVI-Mt.