Green synthesis silver nanoparticles via Eichhornia Crassipes leaves extract and their applications

Recent times sustained efforts have been made in the bottom-up approach and biological Ag nanoparticles synthesis, in present work synthesized silver nanoparticles via green synthesis from the Eichhornia crassipes (EC) leaf extract AgNPs at room temperature with pH of 10–12. Synthesized AgNPs charac...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autores principales: Leena V. Hublikar, Sharanabasava V. Ganachari, Narasimha Raghavendra, Veerabhadragouda B. Patil, Nagaraj R. Banapurmath
Formato: article
Lenguaje:EN
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://doaj.org/article/a13aa3d80f1c4192a97a544745aef3cd
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
id oai:doaj.org-article:a13aa3d80f1c4192a97a544745aef3cd
record_format dspace
spelling oai:doaj.org-article:a13aa3d80f1c4192a97a544745aef3cd2021-11-16T04:11:27ZGreen synthesis silver nanoparticles via Eichhornia Crassipes leaves extract and their applications2666-086510.1016/j.crgsc.2021.100212https://doaj.org/article/a13aa3d80f1c4192a97a544745aef3cd2021-01-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S2666086521001594https://doaj.org/toc/2666-0865Recent times sustained efforts have been made in the bottom-up approach and biological Ag nanoparticles synthesis, in present work synthesized silver nanoparticles via green synthesis from the Eichhornia crassipes (EC) leaf extract AgNPs at room temperature with pH of 10–12. Synthesized AgNPs characterized thoroughly for phase purity and morphology by various characterization techniques. Phytochemical activities of Eichhornia crassipes (EC) leaf extract were shown that main constituents flavonoids, quercetin enhances the conversion of Ag ​+ ​to Ag0. This is also confirmed through the electronic property (EHOMO and ELUMO) of EC leaf extract, which was analyzed through quantum chemical studies. Further the antibacterial activity of AgNPs was screened on E. coli and S. aureus. The result reveals that AgNPs has good antibacterial properties towards the bacteria E. coli. The AgNPs is dedicated also in testing the effectiveness of aluminum corrosion in the acid system at room temperature using Tafel plots, atomic absorption spectroscopy, and AC impedance spectroscopy techniques. Corroded aluminum pieces were observed by using the SEM technique.Leena V. HublikarSharanabasava V. GanachariNarasimha RaghavendraVeerabhadragouda B. PatilNagaraj R. BanapurmathElsevierarticleSilver nanoparticlesAntibacterialAnticorrosionTafel plotHigh-resolution transmission electron microscopyChemistryQD1-999ENCurrent Research in Green and Sustainable Chemistry, Vol 4, Iss , Pp 100212- (2021)
institution DOAJ
collection DOAJ
language EN
topic Silver nanoparticles
Antibacterial
Anticorrosion
Tafel plot
High-resolution transmission electron microscopy
Chemistry
QD1-999
spellingShingle Silver nanoparticles
Antibacterial
Anticorrosion
Tafel plot
High-resolution transmission electron microscopy
Chemistry
QD1-999
Leena V. Hublikar
Sharanabasava V. Ganachari
Narasimha Raghavendra
Veerabhadragouda B. Patil
Nagaraj R. Banapurmath
Green synthesis silver nanoparticles via Eichhornia Crassipes leaves extract and their applications
description Recent times sustained efforts have been made in the bottom-up approach and biological Ag nanoparticles synthesis, in present work synthesized silver nanoparticles via green synthesis from the Eichhornia crassipes (EC) leaf extract AgNPs at room temperature with pH of 10–12. Synthesized AgNPs characterized thoroughly for phase purity and morphology by various characterization techniques. Phytochemical activities of Eichhornia crassipes (EC) leaf extract were shown that main constituents flavonoids, quercetin enhances the conversion of Ag ​+ ​to Ag0. This is also confirmed through the electronic property (EHOMO and ELUMO) of EC leaf extract, which was analyzed through quantum chemical studies. Further the antibacterial activity of AgNPs was screened on E. coli and S. aureus. The result reveals that AgNPs has good antibacterial properties towards the bacteria E. coli. The AgNPs is dedicated also in testing the effectiveness of aluminum corrosion in the acid system at room temperature using Tafel plots, atomic absorption spectroscopy, and AC impedance spectroscopy techniques. Corroded aluminum pieces were observed by using the SEM technique.
format article
author Leena V. Hublikar
Sharanabasava V. Ganachari
Narasimha Raghavendra
Veerabhadragouda B. Patil
Nagaraj R. Banapurmath
author_facet Leena V. Hublikar
Sharanabasava V. Ganachari
Narasimha Raghavendra
Veerabhadragouda B. Patil
Nagaraj R. Banapurmath
author_sort Leena V. Hublikar
title Green synthesis silver nanoparticles via Eichhornia Crassipes leaves extract and their applications
title_short Green synthesis silver nanoparticles via Eichhornia Crassipes leaves extract and their applications
title_full Green synthesis silver nanoparticles via Eichhornia Crassipes leaves extract and their applications
title_fullStr Green synthesis silver nanoparticles via Eichhornia Crassipes leaves extract and their applications
title_full_unstemmed Green synthesis silver nanoparticles via Eichhornia Crassipes leaves extract and their applications
title_sort green synthesis silver nanoparticles via eichhornia crassipes leaves extract and their applications
publisher Elsevier
publishDate 2021
url https://doaj.org/article/a13aa3d80f1c4192a97a544745aef3cd
work_keys_str_mv AT leenavhublikar greensynthesissilvernanoparticlesviaeichhorniacrassipesleavesextractandtheirapplications
AT sharanabasavavganachari greensynthesissilvernanoparticlesviaeichhorniacrassipesleavesextractandtheirapplications
AT narasimharaghavendra greensynthesissilvernanoparticlesviaeichhorniacrassipesleavesextractandtheirapplications
AT veerabhadragoudabpatil greensynthesissilvernanoparticlesviaeichhorniacrassipesleavesextractandtheirapplications
AT nagarajrbanapurmath greensynthesissilvernanoparticlesviaeichhorniacrassipesleavesextractandtheirapplications
_version_ 1718426744187256832