Sunlight-Driven Photocatalytic Degradation of Methylene Blue with Facile One-Step Synthesized Cu-Cu2O-Cu3N Nanoparticle Mixtures

Author:

Paredes Patricio1ORCID,Rauwel Erwan1ORCID,Wragg David S.2,Rapenne Laetitia3,Estephan Elias4ORCID,Volobujeva Olga5,Rauwel Protima1ORCID

Affiliation:

1. Institute of Forestry and Engineering Sciences, Estonian University of Life Sciences, Kreutzwaldi 56/1, 51014 Tartu, Estonia

2. Department of Chemistry and SMN, University of Oslo, 0315 Oslo, Norway

3. Grenoble Institute of Engineering, LMGP, University Grenoble Alpes, CNRS, F-38000 Grenoble, France

4. Laboratory of Bioengineering and Biosciences, LBN, Univ Montpellier, 34193 Montpellier, France

5. Institute of Materials and Environmental Technology, Tallinn University of Technology, 19086 Tallinn, Estonia

Abstract

Sunlight-driven photocatalytic degradation is an effective and eco-friendly technology for the removal of organic pollutants from contaminated water. Herein, we describe the one-step synthesis of Cu-Cu2O-Cu3N nanoparticle mixtures using a novel non-aqueous, sol-gel route and their application in the solar-driven photocatalytic degradation of methylene blue. The crystalline structure and morphology were investigated with XRD, SEM and TEM. The optical properties of the as-prepared photocatalysts were investigated with Raman, FTIR, UV-Vis and photoluminescence spectroscopies. The influence of the phase proportions of Cu, Cu2O and Cu3N in the nanoparticle mixtures on the photocatalytic activity was also investigated. Overall, the sample containing the highest quantity of Cu3N exhibits the highest photocatalytic degradation efficiency (95%). This enhancement is attributed to factors such as absorption range broadening, increased specific surface of the photocatalysts and the downward band bending in the p-type semiconductors, i.e., Cu3N and Cu2O. Two different catalytic dosages were studied, i.e., 5 mg and 10 mg. The higher catalytic dosage exhibited lower photocatalytic degradation efficiency owing to the increase in the turbidity of the solution.

Funder

European Regional Development Fund

EMÜ Bridge Funding

Campus France

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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