Please use this identifier to cite or link to this item: https://hdl.handle.net/10321/4625
Title: Fungi-templated silver nanoparticle composite: synthesis, characterization, and its applications
Authors: Joy, Francis 
Devasia, Jyothis 
Nizam, Aatika 
Veerappa Lakshmaiah, Vasantha 
Krishna, Suresh Babu Naidu
Editors: Krishna, Suresh Babu Naidu
Anthony William, Coleman 
Keywords: Bio templates;Microorganisms;Fungi;Sclerotium rolfsii;Methylene Blue;Dye
Issue Date: 6-Feb-2023
Publisher: MDPI AG
Source: Joy, F. et al. 2023. Fungi-templated silver nanoparticle composite: synthesis, characterization, and its applications. Applied Sciences. 13(4). doi:10.3390/app13042158
Journal: Applied Sciences; Vol. 13, Issue 4 
Abstract: 
The self-assembly of nanoparticles on living bio-templates is a promising synthetic methodology adopted for synthesizing nano/microstructures with high efficiency. Therefore, the method
of bio-templating offers various advantages in controlling the geometries of nano/microstructures,
thereby increasing the efficiency of the synthesized material towards various functional applications.
Herein, we utilized a filamentous fungus (Sclerotium rolfsii) as a soft bio-template to generate silver
nanoparticle (AgNP) microtubules adhering to the fungal hyphae. The resulting composite combines the unique properties of silver nanoparticles with the biological activity of the fungi. The 3D
fungal hyphae–silver nanoparticle (FH-AgNP) composite was characterized using SEM, elemental
analysis, and the X-ray diffraction technique. Additionally, to highlight the functional application
of the synthesized composite, dye degradation studies of methylene blue under visible light was
effectuated, and a percentage degradation of 67.86% was obtained within 60 min, which highlights
the potent catalytic activity of FH-AgNPs in dye degradation. Further, the antibacterial study of the
composite was carried out against the bacterium Escherichia coli, and it was found that 200 µg of the
composite exhibited maximum antibacterial properties against Gram positive (Staphylococcus aureus)
and Gram negative (Escherichia coli) bacteria. Overall, fungi-templated silver nanoparticle composites
are a promising area of research due to their combination of biological activity and unique physical
and chemical properties.
URI: https://hdl.handle.net/10321/4625
ISSN: 2076-3417
DOI: 10.3390/app13042158
Appears in Collections:Research Publications (Applied Sciences)

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