Exploring Reduced Graphene Oxide Sheets Stabilized by Cu(II) and Cu(I) Cations in Ethanol

Author:

Jezzini Aya12,Davidson Anne1ORCID,Hamieh Tayssir23ORCID,Toufaily Joumana2ORCID

Affiliation:

1. Laboratoire de Réactivité de Surface LRS, UMR 7197, Sorbonne Université, 75005 Paris, France

2. Laboratory of Materials, Catalysis, Environment and Analytical Methods (MCEMA), LEADDER, Faculty of Sciences, Lebanese University, Hadath P.O. Box 6573, Lebanon

3. Faculty of Science and Engineering, Maastricht University, P.O. Box 616, 6200 MD Maastricht, The Netherlands

Abstract

In this study, ultrasound treatment was used to exfoliate commercially available graphite flakes into reduced graphene oxide (rGO) dispersed in ethanol. After centrifugation, solid copper chloride trihydrate was added, resulting in a green liquor containing Cu(II), Cu(I), and rGO. These liquors exhibited good and rapid photocatalytic activity in the degradation of eosin and bromophenol blue dyes (elimination in a few seconds) under visible-light irradiation. UV–visible spectroscopy confirmed the presence of rGO and Cu species. The size and morphology of the rGO sheets were investigated by several methods (SAXS, wide-angle XRD, SEM, and TEM). Negative UV peaks indicated light emission, which was independently verified by fluorescence. Intense plasmon peaks, with absorbances greater than 10, were observed after adding copper chloride salt. These plasmons were eliminated by a high dilution before the described catalytic tests were performed.

Publisher

MDPI AG

Reference35 articles.

1. Le graphène premier crystal bidimensionnel;Fuchs;Pour La Sci. Phys.,2008

2. Graphene synthesis, characterization and its applications: A review;Mbayachi;Results Chem.,2021

3. Graphene in Photocatalysis: A Review;Li;Small,2016

4. Methods of Graphite Exfoliation;Minzhen;J. Mater. Chem.,2012

5. Visible-Light-Induced Dye Degradation over Copper-Modified Reduced Graphene Oxide;Ikram;J. Alloys Compd.,2020

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