Fatema, S., Shirsat, M., Farooqui, M., Pathan, M. (2019). Biosynthesis of Silver nanoparticle using aqueous extract of Saraca asoca leaves, its characterization and antimicrobial activity. International Journal of Nano Dimension, 10(2), 163-168.
Samreen Fatema; Mahendra Shirsat; Mazahar Farooqui; Mohd Arif Pathan. "Biosynthesis of Silver nanoparticle using aqueous extract of Saraca asoca leaves, its characterization and antimicrobial activity". International Journal of Nano Dimension, 10, 2, 2019, 163-168.
Fatema, S., Shirsat, M., Farooqui, M., Pathan, M. (2019). 'Biosynthesis of Silver nanoparticle using aqueous extract of Saraca asoca leaves, its characterization and antimicrobial activity', International Journal of Nano Dimension, 10(2), pp. 163-168.
Fatema, S., Shirsat, M., Farooqui, M., Pathan, M. Biosynthesis of Silver nanoparticle using aqueous extract of Saraca asoca leaves, its characterization and antimicrobial activity. International Journal of Nano Dimension, 2019; 10(2): 163-168.
Biosynthesis of Silver nanoparticle using aqueous extract of Saraca asoca leaves, its characterization and antimicrobial activity
1Post Graduate and Research Center, Maulana Azad college, Aurangabad (MS), India 431001.
2RUSA Center for Advanced Sensor Technology, Department of Physics, Dr. Babasaheb Ambedkar Marathwada University, Aurangabad (MS) India, 431004.
3Dr. Rafiq Zakaria College for women, Navkhanda, Aurangabad (MS) India 431001.
Abstract
The use of less hazardous chemicals or natural material in place of toxic chemical for the formation of metal nanoparticle is known as green synthesis. The present paper deals with greener approach for the synthesis of silver (Ag) nanoparticles. The Saraca asoca plant leaves extract solution was used for the silver nanoparticles. Confirmation of Ag nanoparticles has been done using various characterization techniques viz. structural by X-Ray Diffraction (XRD), morphological analysis by Scanning Electron Microscopy (SEM), Atomic Force Microscopy (AFM) and elemental analysis by Energy Dispersive X-ray Spectroscopy (EDX). The particle size of silver nanoparticle is found to be 24.85 nm. The particle exhibits good antibacterial properties against Staphylococci aures, Streptococci pyogens, Salmonella typhi.
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