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Hierarchical Porous O‐Doped g‐C<sub>3</sub>N<sub>4</sub> with Enhanced Photocatalytic CO<sub>2</sub> Reduction Activity
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50
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2017
Year
Artificial photosynthesis of hydrocarbon fuels by utilizing solar energy and CO<sub>2</sub> is considered as a potential route for solving ever-increasing energy crisis and greenhouse effect. Herein, hierarchical porous O-doped graphitic carbon nitride (g-C<sub>3</sub> N<sub>4</sub> ) nanotubes (OCN-Tube) are prepared via successive thermal oxidation exfoliation and curling-condensation of bulk g-C<sub>3</sub> N<sub>4</sub> . The as-prepared OCN-Tube exhibits hierarchically porous structures, which consist of interconnected multiwalled nanotubes with uniform diameters of 20-30 nm. The hierarchical OCN-Tube shows excellent photocatalytic CO<sub>2</sub> reduction performance under visible light, with methanol evolution rate of 0.88 µmol g<sup>-1</sup> h<sup>-1</sup> , which is five times higher than bulk g-C<sub>3</sub> N<sub>4</sub> (0.17 µmol g<sup>-1</sup> h<sup>-1</sup> ). The enhanced photocatalytic activity of OCN-Tube is ascribed to the hierarchical nanotube structure and O-doping effect. The hierarchical nanotube structure endows OCN-Tube with higher specific surface area, greater light utilization efficiency, and improved molecular diffusion kinetics, due to the more exposed active edges and multiple light reflection/scattering channels. The O-doping optimizes the band structure of g-C<sub>3</sub> N<sub>4</sub> , resulting in narrower bandgap, greater CO<sub>2</sub> affinity, and uptake capacity as well as higher separation efficiency of photogenerated charge carriers. This work provides a novel strategy to design hierarchical g-C<sub>3</sub> N<sub>4</sub> nanostructures, which can be used as promising photocatalyst for solar energy conversion.
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