4.7 Article

Robust Z-scheme g-C3N4/WO3 heterojunction photocatalysts with morphology control of WO3 for efficient degradation of phenolic pollutants

Journal

SEPARATION AND PURIFICATION TECHNOLOGY
Volume 255, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.seppur.2020.117693

Keywords

Photocatalysis; Graphitic carbon nitride; Tungsten trioxide; Z-scheme heterojunction; Phenolic pollutants

Funding

  1. National Natural Science Foundation of China [21573038, 51608102]

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Z-scheme g-C3N4/WO3 heterojunction photocatalysts with controlled morphology of WO3 are easily fabricated and applied in photocatalytic degradation of phenolic pollutants under simulated sunlight. The enhanced photocatalytic activity of g-C3N4/WO3 is attributed to the Z-scheme band alignment, impact of WO3 ratio and morphology, and intimate interfacial contact between WO3 and g-C3N4. Active species generated during the process can oxidize target pollutants to harmless inorganic compounds.
Z-scheme g-C3N4/WO3 heterojunction photocatalysts with morphology control of WO3 are facilely fabricated via a thermal-induced self-polymerization of melamine in the presence of WO3 nanowires, nanosheets and microflowers, and they are successfully applied in simulated sunlight photocatalytic degradation of two refractory phenolic pollutants, p-nitrophenol and methylparaben. The g-C3N4/WO3 heterojunctions exhibit enhanced photocatalytic removal efficiency towards the target pollutants in comparison of pristine g-C3N4 and WO3; moreover, both the ratio and morphology of WO3 influence the photocatalytic activity of g-C3N4/WO3 dramatically. At the same ratio of WO3 in heterojunctions, g-C3N4/WO3 nanowires exhibit the highest pollutants removal efficiency among three heterojunction photocatalysts. By combination of testing results including photoelectronchemistry, photoluminescence and active species trapping it is confirmed that the unique Z-scheme band alignment of g-C3N4/WO3 heterojunctions plays the dominated role to the enhanced photocatalytic activity, which not only boosts the spatial separation of charge carriers but also endows the g-C3N4/WO3 with supreme redox capacity; additionally, intimate interfacial contact between WO3 and g-C3N4 in the heterojunction can further promote this Z-scheme-dictated charge carrier transfer and separation. Under the attack of active species like h(VB)(+), O-center dot(2)- and (OH)-O-center dot radicals, the target pollutants can be oxidized deeply to harmless inorganic compounds.

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