SUSTAINABLE FABRICATION OF MULTIFUNCTIONAL MAGNETIC SCHIFF BASE NANOHYBRIDS FOR HEAVY METAL REMOVAL AND ANTIBACTERIAL APPLICATIONS
Keywords:
Antibacterial activity, Fe₃O₄ magnetic nanoparticles, Heavy metal remediation, Magnetic Schiff base nanohybrids, Sustainable synthesis, Wastewater treatment.,,Abstract
With the growing incidence of heavy metal contamination and multidrug-resistant bacterial
infections, materials with multiple functionalities and those that are friendly to the environment
are required to solve both problems together. A green and sustainable method was used to
prepare magnetic Schiff base nanohybrids, via the functionalization of Fe₃O₄ magnetic
nanoparticles with bioactive Schiff base ligands, synthesized by condensation of naturally
occurring aldehydes and amines. Successful surface functionalization, high crystallinity,
excellent magnetic recoverability, and a large number of active adsorption sites were confirmed
by UV–Visible spectroscopy, Fourier Transform Infrared Spectroscopy (FTIR), X-ray
Diffraction (XRD), Scanning Electron Microscopy (SEM), Transmission Electron Microscopy
(TEM), Energy-Dispersive X-ray Spectroscopy (EDS), Vibrating Sample Magnetometry
(VSM), Brunauer–Emmett–Teller (BET) surface area analysis, and X-ray Photoelectron
Spectroscopy (XPS).The adsorption efficiency of the magnetic Schiff base nanohybrids was
systematically investigated for the adsorption of toxic heavy metal ions (Pb(II), Cd(II), Cr(VI)
and Cu(II)) under various experimental conditions. Based on the synergistic effect of magnetic
separation and the Schiff base metal-chelation functionality, the nanohybrids showed fast
adsorption rate, high adsorption capacities and good removal efficiencies. Langmuir isotherm
and pseudo-second-order kinetic model were applied to the adsorption behavior, which was
found to be closely followed, suggesting that the dominant monolayer chemisorption process
was predominant. At the same time, the nanohybrids showed excellent antimicrobial activity
against Staphylococcus aureus and Escherichia coli, creating zones of inhibition, low minimum
inhibitory concentration (MIC) and effectiveness against biofilm formation by inducing the
production of reactive oxygen species (ROS) which caused disruption of the bacterial cell
membranes and intracellular oxidative stress. In addition, the nanohybrids showed very high
structural stability, magnetic recyclability and remained over 90% active towards the
adsorption and antibacterial activity after multiple regeneration cycles, which indicated their
long term operational stability. Efficient removal of heavy metals, strong antibacterial
properties, environmental-friendly synthesis, and easy magnetic recovery make these
multifunctional magnetic Schiff base nanohybrids highly promising materials in integrated
environmental remediation, wastewater purification, antimicrobial coatings, and sustainable
biomedical applications. The results represent a good alternative design for next generation
multifunctional magnetic nanomaterials that can help simultaneously solve both environmental
pollution and microbial contamination problems.

