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Updated: May 23, 2025

Using Magnetometry to Monitor Cellular Incorporation and Subsequent Biodegradation of Chemically Synthetized Iron Oxide Nanoparticles
Published on: February 27, 2021
Sustainable synthesized iron oxide nanoparticles as a highly efficient material for degradation of dyes:
Meryem El Ghanjaoui1, Amal Soufi2, Yassine Kadmi3
1Laboratoire d'Ingénierie, d'Electrochimie, de Modélisation et d'Environnement, Université Sidi Mohamed Ben Abdellah, Faculté des Sciences Dhar El Mahraz, Fès, Morocco.
Abstract:
In this study, iron oxide nanoparticles (IONPs) were biosynthesized using Artemisia-herba-alba extract and employed in a heterogeneous Fenton-like process to remove Tartrazine and Nile blue A (NBA) dyes. This process was applied throughout the box Behnken design (BBD) to examine the impact of operating factors. To analyze the IONPs formed, characterization techniques including the X-ay diffraction (XRD), the Scanning electron microscopy- Energy-Dispersive X-Ray (SEM-EDX) and the Fourier Transform Infrared Spectroscopy (FTIR) are used. In this approach, an experimental design was used with three parameters including IONPs dosage (1-2 g. L-1), H2O2 concentration (176.4-529.4 mM) and pH solution (2.5-3.5). Hence, BBD highlights the different impacts of the three crucial parameters chosen and their interactions on the degradation efficiencies of the Tartrazine (DE1%) and the NBA (DE2%). The optimal conditions for maximizing the degradation efficiencies are determined as 1.98 g.L-1 of IONPs dosage, 518 mM of H2O2 and 3.14 pH of solution. Using numerical optimization by desired function, the predicted degradation efficiencies were 82.96% for the Tartrazine and 80.79% for the NBA under the optimum conditions.

