Biosynthesis of Ag Nanoparticles Using Isolated Bacteria from Contaminated Sites and Its Application As an Efficient Catalyst for Hydrazine Electrooxidation
Overview
Affiliations
In the present study, a bacterium resistance to heavy metals was isolated from contaminated areas. An eco-friendly and simple method was found to biosynthesis of silver nanoparticles (AgNPs) by reducing of aqueous Ag using the heavy metals resistance MKH1 bacterium. The biosynthesized AgNPs were characterized by UV-vis spectroscopy, scanning electron microscopy (SEM) and X-ray diffraction (XRD) techniques. A peak at about 420nm is related to absorption band of AgNPs which confirms by UV-vis spectroscopy. The SEM images showed that the biosynthesized AgNPs have mainly spherical shape with average diameters of 30-60nm. The electro-catalytic properties of AgNPs with different Ag content were investigated by different electrochemical tests. Biosynthesized AgNPs using isolated MKH1 show high catalytic activity and stability towards the oxidation reaction of hydrazine.
Copper bioreduction and nanoparticle synthesis by an enrichment culture from a former copper mine.
Kimber R, Elizondo G, Jedyka K, Boothman C, Cai R, Bagshaw H Environ Microbiol. 2023; 25(12):3139-3150.
PMID: 37697680 PMC: 10946571. DOI: 10.1111/1462-2920.16488.
Bruna N, Galliani E, Oyarzun P, Bravo D, Fuentes F, Perez-Donoso J Biol Res. 2022; 55(1):12.
PMID: 35296351 PMC: 8925236. DOI: 10.1186/s40659-022-00382-6.
Ahmed T, Shahid M, Noman M, Niazi M, Mahmood F, Manzoor I Pathogens. 2020; 9(3).
PMID: 32110981 PMC: 7157244. DOI: 10.3390/pathogens9030160.
Green Biosynthesis of Silver Nanoparticles Using (Thunb.) Leaf Extract for Reductive Catalysis.
Yu C, Tang J, Liu X, Ren X, Zhen M, Wang L Materials (Basel). 2019; 12(1).
PMID: 30626021 PMC: 6337669. DOI: 10.3390/ma12010189.