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Graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities

High-efficiency photocatalysts are crucial for the removal of organic pollutants and environmental sustainability. In the present work, we report on a new low-temperature hydrothermal chemical method, assisted by ultrasonication, to synthesize disruptive plasmonic ZnO/graphene/Ag/AgI nanocomposites...

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Autores principales: Adam, Rania E., Chalangar, Ebrahim, Pirhashemi, Mahsa, Pozina, Galia, Liu, Xianjie, Palisaitis, Justinas, Pettersson, Håkan, Willander, Magnus, Nur, Omer
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072162/
https://www.ncbi.nlm.nih.gov/pubmed/35530210
http://dx.doi.org/10.1039/c9ra06273d
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author Adam, Rania E.
Chalangar, Ebrahim
Pirhashemi, Mahsa
Pozina, Galia
Liu, Xianjie
Palisaitis, Justinas
Pettersson, Håkan
Willander, Magnus
Nur, Omer
author_facet Adam, Rania E.
Chalangar, Ebrahim
Pirhashemi, Mahsa
Pozina, Galia
Liu, Xianjie
Palisaitis, Justinas
Pettersson, Håkan
Willander, Magnus
Nur, Omer
author_sort Adam, Rania E.
collection PubMed
description High-efficiency photocatalysts are crucial for the removal of organic pollutants and environmental sustainability. In the present work, we report on a new low-temperature hydrothermal chemical method, assisted by ultrasonication, to synthesize disruptive plasmonic ZnO/graphene/Ag/AgI nanocomposites for solar-driven photocatalysis. The plasmonic nanocomposites were investigated by a wide range of characterization techniques, confirming successful formation of photocatalysts with excellent degradation efficiency. Using Congo red as a model dye molecule, our experimental results demonstrated a photocatalytic reactivity exceeding 90% efficiency after one hour simulated solar irradiation. The significantly enhanced degradation efficiency is attributed to improved electronic properties of the nanocomposites by hybridization of the graphene and to the addition of Ag/AgI which generates a strong surface plasmon resonance effect in the metallic silver further improving the photocatalytic activity and stability under solar irradiation. Scavenger experiments suggest that superoxide and hydroxyl radicals are responsible for the photodegradation of Congo red. Our findings are important for the fundamental understanding of the photocatalytic mechanism of ZnO/graphene/Ag/AgI nanocomposites and can lead to further development of novel efficient photocatalyst materials.
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spelling pubmed-90721622022-05-06 Graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities Adam, Rania E. Chalangar, Ebrahim Pirhashemi, Mahsa Pozina, Galia Liu, Xianjie Palisaitis, Justinas Pettersson, Håkan Willander, Magnus Nur, Omer RSC Adv Chemistry High-efficiency photocatalysts are crucial for the removal of organic pollutants and environmental sustainability. In the present work, we report on a new low-temperature hydrothermal chemical method, assisted by ultrasonication, to synthesize disruptive plasmonic ZnO/graphene/Ag/AgI nanocomposites for solar-driven photocatalysis. The plasmonic nanocomposites were investigated by a wide range of characterization techniques, confirming successful formation of photocatalysts with excellent degradation efficiency. Using Congo red as a model dye molecule, our experimental results demonstrated a photocatalytic reactivity exceeding 90% efficiency after one hour simulated solar irradiation. The significantly enhanced degradation efficiency is attributed to improved electronic properties of the nanocomposites by hybridization of the graphene and to the addition of Ag/AgI which generates a strong surface plasmon resonance effect in the metallic silver further improving the photocatalytic activity and stability under solar irradiation. Scavenger experiments suggest that superoxide and hydroxyl radicals are responsible for the photodegradation of Congo red. Our findings are important for the fundamental understanding of the photocatalytic mechanism of ZnO/graphene/Ag/AgI nanocomposites and can lead to further development of novel efficient photocatalyst materials. The Royal Society of Chemistry 2019-09-26 /pmc/articles/PMC9072162/ /pubmed/35530210 http://dx.doi.org/10.1039/c9ra06273d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Adam, Rania E.
Chalangar, Ebrahim
Pirhashemi, Mahsa
Pozina, Galia
Liu, Xianjie
Palisaitis, Justinas
Pettersson, Håkan
Willander, Magnus
Nur, Omer
Graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities
title Graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities
title_full Graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities
title_fullStr Graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities
title_full_unstemmed Graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities
title_short Graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities
title_sort graphene-based plasmonic nanocomposites for highly enhanced solar-driven photocatalytic activities
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072162/
https://www.ncbi.nlm.nih.gov/pubmed/35530210
http://dx.doi.org/10.1039/c9ra06273d
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