Synergistic visible light plasmonic photocatalysis of bi-metallic Gold-Palladium nanoparticles supported on graphene

Visible light photocatalysis using plasmonic nanoparticles is gaining currency due to the possibility of using freely available sun light to generate high energy ‘hot’ electrons. However, effective strategies have to be developed for the generation and stabilization of hot electrons and hot holes. I...

Full description

Bibliographic Details
Main Authors: Bulti Pramanick, Prem Felix Siril
Format: Article
Language:English
Published: Elsevier 2023-01-01
Series:Results in Chemistry
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2211715623000139
_version_ 1797799115030003712
author Bulti Pramanick
Prem Felix Siril
author_facet Bulti Pramanick
Prem Felix Siril
author_sort Bulti Pramanick
collection DOAJ
description Visible light photocatalysis using plasmonic nanoparticles is gaining currency due to the possibility of using freely available sun light to generate high energy ‘hot’ electrons. However, effective strategies have to be developed for the generation and stabilization of hot electrons and hot holes. In this work, nanoparticles of a plasmonic metal (Au) were combined with a highly active catalyst (Pd) nanoparticles along with a conductive catalyst support (few layered graphene, FLG). Nanoparticles having very small size could be prepared with the help of swollen liquid crystals as soft templates. The templates allowed entrapment of FLG along with a metal salt and yielded the nanocomposites on exposure to hydrazine vapor. Reduction of para-nitrophenol (p-NP) in presence of excess amount of sodium borohydride was used as a model reaction. Synergistic enhancement in photocatalytic activities could be observed with the Au-Pd/FLG being the best catalyst when compared to the nanoparticles of Au, Pd, Au-Pd and their nanocomposites with FLG (Au/FLG and Pd/FLG). Normalized rate constant (9.77 s−1 mg−1) of the Au-Pd/FLG was quite high compared to most other Au and Pd based nanomaterials that are reported in the literature. The enhanced photocatalytic activity of the Au-Pd/FLG nanocomposite could be correlated with its enhanced visible light activity. Moreover, enhanced adsorption of the reactant molecules and better charge transfer of the nanocomposite are also reasons for the observed photocatalytic activities of the Au-Pd/FLG nanocomposite.
first_indexed 2024-03-13T04:14:06Z
format Article
id doaj.art-f45b4c67896946ada9c51d175db4d7ac
institution Directory Open Access Journal
issn 2211-7156
language English
last_indexed 2024-03-13T04:14:06Z
publishDate 2023-01-01
publisher Elsevier
record_format Article
series Results in Chemistry
spelling doaj.art-f45b4c67896946ada9c51d175db4d7ac2023-06-21T06:51:58ZengElsevierResults in Chemistry2211-71562023-01-015100774Synergistic visible light plasmonic photocatalysis of bi-metallic Gold-Palladium nanoparticles supported on grapheneBulti Pramanick0Prem Felix Siril1School of Basic Sciences and Advanced Materials Research Centre, Indian Institute of Technology Mandi, Mandi 175005, Himachal Pradesh, IndiaCorresponding author.; School of Basic Sciences and Advanced Materials Research Centre, Indian Institute of Technology Mandi, Mandi 175005, Himachal Pradesh, IndiaVisible light photocatalysis using plasmonic nanoparticles is gaining currency due to the possibility of using freely available sun light to generate high energy ‘hot’ electrons. However, effective strategies have to be developed for the generation and stabilization of hot electrons and hot holes. In this work, nanoparticles of a plasmonic metal (Au) were combined with a highly active catalyst (Pd) nanoparticles along with a conductive catalyst support (few layered graphene, FLG). Nanoparticles having very small size could be prepared with the help of swollen liquid crystals as soft templates. The templates allowed entrapment of FLG along with a metal salt and yielded the nanocomposites on exposure to hydrazine vapor. Reduction of para-nitrophenol (p-NP) in presence of excess amount of sodium borohydride was used as a model reaction. Synergistic enhancement in photocatalytic activities could be observed with the Au-Pd/FLG being the best catalyst when compared to the nanoparticles of Au, Pd, Au-Pd and their nanocomposites with FLG (Au/FLG and Pd/FLG). Normalized rate constant (9.77 s−1 mg−1) of the Au-Pd/FLG was quite high compared to most other Au and Pd based nanomaterials that are reported in the literature. The enhanced photocatalytic activity of the Au-Pd/FLG nanocomposite could be correlated with its enhanced visible light activity. Moreover, enhanced adsorption of the reactant molecules and better charge transfer of the nanocomposite are also reasons for the observed photocatalytic activities of the Au-Pd/FLG nanocomposite.http://www.sciencedirect.com/science/article/pii/S2211715623000139Plasmonic nanoparticlesGrapheneNanocompositeSwollen liquid crystalVisible lightPhotocatalysis
spellingShingle Bulti Pramanick
Prem Felix Siril
Synergistic visible light plasmonic photocatalysis of bi-metallic Gold-Palladium nanoparticles supported on graphene
Results in Chemistry
Plasmonic nanoparticles
Graphene
Nanocomposite
Swollen liquid crystal
Visible light
Photocatalysis
title Synergistic visible light plasmonic photocatalysis of bi-metallic Gold-Palladium nanoparticles supported on graphene
title_full Synergistic visible light plasmonic photocatalysis of bi-metallic Gold-Palladium nanoparticles supported on graphene
title_fullStr Synergistic visible light plasmonic photocatalysis of bi-metallic Gold-Palladium nanoparticles supported on graphene
title_full_unstemmed Synergistic visible light plasmonic photocatalysis of bi-metallic Gold-Palladium nanoparticles supported on graphene
title_short Synergistic visible light plasmonic photocatalysis of bi-metallic Gold-Palladium nanoparticles supported on graphene
title_sort synergistic visible light plasmonic photocatalysis of bi metallic gold palladium nanoparticles supported on graphene
topic Plasmonic nanoparticles
Graphene
Nanocomposite
Swollen liquid crystal
Visible light
Photocatalysis
url http://www.sciencedirect.com/science/article/pii/S2211715623000139
work_keys_str_mv AT bultipramanick synergisticvisiblelightplasmonicphotocatalysisofbimetallicgoldpalladiumnanoparticlessupportedongraphene
AT premfelixsiril synergisticvisiblelightplasmonicphotocatalysisofbimetallicgoldpalladiumnanoparticlessupportedongraphene