Author:
Shahzad Asif,Aslibeiki Bagher,Slimani Sawssen,Ghosh Sagnik,Vocciante Marco,Grotti Marco,Comite Antonio,Peddis Davide,Sarkar Tapati
Abstract
AbstractA magnetic perovskite-spinel oxide nanocomposite synthesized through a sol–gel self-combustion process is used for the first time as an adsorbent to remove toxic heavy metals (i.e., Pb2+). The synthesized LaFeO3:CoFe2O4 ((LFO)1:(CFO)x) (x = 0.11–0.87) nanocomposites possess good stability, abundant oxygenated active binding sites, and unique structural features, making them suitable for removing divalent Pb2+ ions. Scanning electron microscopy, X-ray diffraction, BET surface area, magnetization measurements, zeta-potential analyses, and X-ray photoelectron spectroscopy were used to analyze the nanocomposites, and their structural changes after Pb2+ ions adsorption. Batch tests confirmed that (LFO)1:(CFO)x efficiently removes Pb2+ from water with a maximum adsorption capacity of 105.96 mg/g. The detailed quantitative study indicates that the interaction of hydroxyl groups with Pb2+ ions occurs through electrostatic interactions and complex formation. We also demonstrate a new ring-magnetic separator system that allows magnetic separation of the toxic ions at a higher speed compared to traditional block magnets. The unique structure, high porosity, large specific surface area, and oxygenated functional groups of (LFO)1:(CFO)x nanocomposites make them promising materials for removal of heavy metal ions and possibly other environmental pollutants. This study provides a new approach to preparing nanocomposites of magnetic spinel ferrites with perovskite oxides for environmental applications.
Publisher
Springer Science and Business Media LLC
Reference46 articles.
1. Bakker, K. Water security: Research challenges and opportunities. Science 337, 914–915 (2012).
2. Momodu, M. A. & Anyakora, C. A. Heavy metal contamination of ground water: The surulere case study. Res. J. Environ. Earth Sci. 2, 39–43 (2010).
3. Usman, Q. A., Muhammad, S., Ali, W., Yousaf, S. & Jadoon, I. A. K. Spatial distribution and provenance of heavy metal contamination in the sediments of the Indus River and its tributaries, North Pakistan: Evaluation of pollution and potential risks. Environ. Technol. Innov. 21, 101184 (2021).
4. WHO. Lead in Drinking-Water: Health Risks, Monitoring and Corrective Actions. Technical Brief (WHO, 2022).
5. Obeng-Gyasi, E. Sources of lead exposure in various countries. Rev. Environ. Health 34, 25–34 (2019).