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It was found that the RGO/Bi2WO6 composites displayed enhanced visible light-driven photocatalytic activities.
Enhanced visible light-responsive activity for CO2 photoreduction was obtained over mesoporous N-doped TiO2 with noble metal loading[6].
Liu et al. constructed hierarchical graphene Bi2O2CO3 composites which exhibit a significantly enhanced visible light photocatalytic performance [25].
Results show that the composite nanospheres exhibited enhanced visible light photocatalytic activity compared with the initial porous ZnS nanospheres.
The resultant hybrid nanotubes exhibited significantly enhanced visible spectrum absorption and higher photoconversion efficiency compared to the pure TiO2 nanotubes.
The Ag/AgHSiW NPs, which possess abundant hydroxyl (OH) groups on their surface, has not only significantly enhanced visible spectrum absorption but also reduced photoluminescence (PL) emission.
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As expected, the as-prepared BiPO4/Bi2S3 heterojunction exhibited enhanced visible-light photocatalytic activity and a possible mechanism was presented.
The resulting composites exhibit enhanced visible-light-driven photoactivities for H2 production from water in the presence of sacrificial reagents.
The nanocomposites exhibit a well-defined core-shell structure, superparamagnetic behavior, wide-spectrum photoresponse and markedly enhanced visible-light photocatalytic activity.
After anodic polarization, the PEDOT PSS RuO2 composite film exhibited enhanced visible-light coloration in comparison with PEDOT/PSS and simple RuO2 films.
Recently, the combination of plasmonic noble metallic nanostructures with semiconductors for plasmon-enhanced visible light-driven water splitting (WS) has attracted considerable attention.
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