Publication | Closed Access
Enhanced Driving Force and Charge Separation Efficiency of Protonated g-C<sub>3</sub>N<sub>4</sub> for Photocatalytic O<sub>2</sub> Evolution
473
Citations
65
References
2015
Year
EngineeringInorganic PhotochemistrySynthetic PhotochemistryPhoto-electrochemical CellChemistryPhotoelectrochemistryChemical EngineeringPhotocatalysisCharge SeparationMaterials SciencePhotochemistryEfficient Water OxidationCatalysisEnergyPhotoelectrocatalysisWater SplittingWater OxidationElectrochemistryDesirable KineticsCharge Separation EfficiencyEnhanced Driving Force
Photocatalysts based on g-C3N4 by loading cocatalysts or constructing heterojunctions have shown great potential in solar-driven water oxidation. However, the intrinsic drawbacks of g-C3N4, such as poor mass diffusion and charge separation efficiency, remain as the bottleneck to achieve highly efficient water oxidation. Here we report a simple protonation method to improve the activity of g-C3N4. Studies using valence band X-ray photoelectron spectra and steady-state and time-resolved spectroscopy reveal that the promotion of catalytic ability originates from the higher thermodynamical driving force and longer-lived charge separation state, which may provide guidance in designing efficient polymeric semiconductor photocatalysts with desirable kinetics for water oxidation.
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