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α-Ag2WO4/g-C3N4: Investigation of the synthesis medium on composite properties and H2 evolution under simulated
Habiba Khiar1, Laura Carolina Valencia-Valero2, Alberto Puga2
1Sultan Moulay Slimane University of Beni Mellal, Multidisciplinary Research and Innovation Laboratory, FP Khouribga, BP. 145, 2500, Khouribga, Morocco.
Abstract:
The current paper proposes a new approach to address the low separation rate of photogenerated charge carriers in g-C3N4 by decorating it with low concentrations of α-Ag2WO4. g-C3N4 and α-Ag2WO4 were prepared separately via urea pyrolysis and co-precipitation, respectively. The composites were then physically prepared using a sonication-grinding method. The effect of the preparation medium was considered a crucial aspect of this study. Two different media were examined: pure water and a water/ethanol mixture (50 % v/v). It was found that pure water was more favorable for achieving high photocatalytic performance compared to the ethanol/water mixture. The photocatalytic hydrogen production through ethanol photoreforming under simulated solar light was investigated. The results showed that α-Ag2WO4/g-C3N4 (w), prepared in pure water, exhibited significantly higher efficiency for H2 production compared to both pure g-C3N4 and the series prepared in the ethanol/water solution. This improvement was attributed to the intimate contact between the two phases in the heterojunction when water was used as the preparation medium. The optimal photocatalyst, 2 % α-Ag2WO4/g-C3N4 (w), achieved an H2 evolution rate of 110.28 μmol g-1 h-1, whereas pure g-C3N4 reached only 25.32 μmol g-1 h-1. The formation of a heterojunction between α-Ag2WO4 and g-C3N4 promotes the separation of photogenerated charge carriers and prolongs their lifespan, which is the primary reason for the enhanced H2 evolution activity.
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