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Polyaniline-iron oxide nanocomposites, Electrochemical synthesis Cycliv Voltammetry, Adsorption mechanism, Reusability Repeatability, Water treatment

Research Abstract

Abstract:

Background: This study presents the first successful cyclic voltammetry-assisted one-step electrochemical synthesis of polyaniline-iron oxide nanocomposites. The composite films were developed by reducing an irontriethanolamine complex in an alkaline solution containing aniline monomers, enabling the uniform integration of iron oxide nanoparticles into a conductive polyaniline matrix.
Methods: The nanocomposites were synthesized through electrodeposition, and characterized by scanning electron microscopy (SEM), X-ray diffraction (XRD), and Fourier-transform infrared spectroscopy (FTIR). Thermal stability was evaluated using thermogravimetric (TGA) and differential thermal analysis (DTA).
Signifcant Findings: The synthesized nanocomposites exhibited excellent capabilities for adsorption or uptake lead and cadmium ions lead and cadmium ions from water, following a chemisorption mechanism as suggested by kinetic and isotherm modeling. The materi als demonstrated high reusability with negligible loss in adsorption effciency over three consecutive adsorption-desorption cycles, and good repeatability with consistent adsorption capacities across multiple batches. Maximum adsorption capacities reached 96.99 mg/g for cadmium and 335.57
mg/g for lead, surpassing many reported materials. This work highlights a scalable electrochemical approach for fabricating high-performance nanocomposite adsorbents for water purifcation.

Research Authors
Rehab Abd-Elrahman, Hany M. Abd El-Lateef, Nagwa Abo El-Maali, A.M. Abdel-Mawgoud, Mahmoud Elrouby
Research Date
Research Department
Research Journal
Journal of the Taiwan Institute of Chemical Engineers 173 (2025) 106187
Research Member
Research Pages
11
Research Publisher
Elsevier
Research Rank
6.9 Impact Factor, Q1
Research Vol
173
Research Website
www.journals.elsevier.com/journal-of-the-taiwan-institute-of-chemical-engineers
Research Year
2025