PHYTOGENIC GREEN SYNTHESIS OF MULTIFUNCTIONAL MAGNETIC NANOCOMPOSITES FOR BIOMEDICAL, CATALYTIC, AND ENVIRONMENTAL APPLICATIONS

Authors

  • Dr. Birendra Pratap Singh Department of Chemistry, CSJMU University, Kanpur Author

Keywords:

Green synthesis; Magnetic nanocomposites; Curry leaf extract (Murraya koenigii); Biomedical applications; Environmental remediation; Photocatalysis; Heavy metal adsorption; Antibacterial activity; Sustainable nanotechnology.,,

Abstract

As the demand for sustainable productions of nanomaterials grows, the development of 
environmentally friendly methods that reduce or completely remove the use of harmful 
chemicals and improve the functionality of the materials is accelerating. The current study 
introduces a green synthesis approach for the preparation of multifunctional magnetic 
nanocomposites through the natural reducing, stabilizing and capping agent Murraya koenigii 
(curry leaf) extract. Phytochemicals such as polyphenols, flavonoids, alkaloids, and terpenoids 
found in the extract play a role in the dispersion of magnetic nanoparticles to form uniformly 
distributed particles with improved physicochemical stability. The structural, morphological, 
magnetic, elemental and thermal properties of the synthesized nanocomposites were 
comprehensively assessed by performing various characterization techniques such as 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 (EDX), Vibrating Sample Magnetometry (VSM) and 
Thermogravimetric Analysis (TGA). The composites developed are investigated for their 
multifunctional use in biomedical and environmental applications. Through a series of 
biomedical studies, the researchers found that the compounds exhibited strong antioxidant 
properties, high efficacy against Gram-positive and Gram-negative bacteria strains, good 
biocompatibility, and improved drug-loading potential, all of which suggest their application 
in targeted drug delivery, fabrication of antimicrobial coatings, and biomedical diagnostics. 
The environmental studies showed excellent photocatalytic degradation ability for organic dye 
pollutants, high adsorption ability toward heavy metal ions, and excellent magnetic 
recoverability for repeated use without much loss of catalytic activity. The magnetic properties 
enable the nanocomposites to be easily separated from aqueous media, thus enhancing the 
operational efficiency and reducing secondary contamination. The outcomes reveal that curry 
leaf extract could be used as a very efficient, renewable and environmentally friendly precursor 
for the preparation of magnetic nanocomposites of high performance which possess high 
stability and multifunctionality. The green chemistry approach combined with magnetic 
nanotechnology offers a platform for the development of sustainable materials for advanced 
biomedical therapies, environmental remediation, wastewater treatment, and catalytic 
applications at a lower cost and at a larger scale. This work points out the high potential 
applications of magnetic nanocomposites of plants as new multifunctional materials, which can 
be used for solving health and environmental problems and for sustainable nanomanufacturing 
methods.

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Phoenix: International Multidisciplinary Research Journal

Vol 1, Jan-March, 2022

ISSN: 2583-6897

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Published

2022-03-24

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How to Cite

PHYTOGENIC GREEN SYNTHESIS OF MULTIFUNCTIONAL MAGNETIC NANOCOMPOSITES FOR BIOMEDICAL, CATALYTIC, AND ENVIRONMENTAL APPLICATIONS . (2022). Phoenix: International Multidisciplinary Research Journal ( Peer Reviewed High Impact Journal ), 1, 133-149. https://pimrj.org/index.php/pimrj/article/view/388