Ba3(PO4)2 Photocatalyst for Efficient Photocatalytic Application

Author:

Naciri Yassine1,Ahdour Ayoub2,Benhsina Elhassan3,Hamza Mahmoud Adel45,Bouziani Asmae6,Hsini Abdelghani78,Bakiz Bahcine23,Navío Jose Antonio9,Ghazzal Mohamed Nawfal1ORCID

Affiliation:

1. Institut de Chimie Physique UMR 8000 CNRS Université Paris‐Saclay Orsay 91405 France

2. Laboratory of Materials and Environment Faculty of Sciences Ibn Zohr University B.P 8106 Agadir Morocco

3. Materials Science Center Faculty of Sciences Mohammed V University in Rabat Rabat B.P:8007 Morocco

4. Chemistry Department Faculty of Science Ain Shams University Abbasia Cairo 11566 Egypt

5. Department of Chemistry School of Physics Chemistry and Earth Sciences The University of Adelaide Adelaide SA 5005 Australia

6. Chemical Engineering Department Middle East Technical University Ankara 06800 Turkey

7. National Higher School of Chemistry (NHSC) University Ibn Tofail BP. 133 Kenitra 14000 Morocco

8. Laboratory of Advanced Materials and Process Engineering (LAMPE) Faculty of Science Ibn Tofail University BP 133 Kenitra 14000 Morocco

9. Instituto de Ciencia de Materiales de Sevilla Centro Mixto Universidad de Sevilla‐CSIC Américo Vespucio 49 Sevilla 41092 Spain

Abstract

AbstractBarium phosphate (Ba3(PO4)2) is a class of material that has attracted significant attention thanks to its chemical stability and versatility. However, the use of Ba3(PO4)2 as a photocatalyst is scarcely reported, and its use as a photocatalyst has yet to be reported. Herein, Ba3(PO4)2 nanoflakes synthesis is optimized using sol‐gel and hydrothermal methods. The as‐prepared Ba3(PO4)2 powders are investigated using physicochemical characterizations, including XRD, SEM, EDX, FTIR, DRS, Jt, LSV, Mott‐Schottky, and EIS. In addition, DFT calculations are performed to investigate the band structure. The oxidation capability of the photocatalysts is investigated depending on the synthesis method using rhodamine B (RhB) as a pollutant model. Both Ba3(PO4)2 samples prepared by the sol‐gel and hydrothermal methods display high RhB photodegradation of 79% and 68%, respectively. The Ba3(PO4)2 obtained using the sol‐gel process exhibits much higher stability under light excitation after four regeneration cycles. The photocatalytic oxidation mechanism is proposed based on the active species trapping experiments where O2•‒ is the most reactive species. The finding shows the promising potential of Ba3(PO4)2 photocatalysts and opens the door for further investigation and application in various photocatalytic applications.

Publisher

Wiley

Subject

Multidisciplinary

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