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Schottky junction enhanced H 2 evolution for graphitic carbon nitride-NiS composite photocatalysts.

Wenhui YueZehong XuMuhammad TayyabLingzhi WangZiwei YeJinlong Zhang
Published in: Journal of colloid and interface science (2023)
As one of the most promising photocatalysts for H 2 evolution, graphitic carbon nitride (CN) has many appealing attributes. However, the activity of pristine CN remains unsatisfactory due to severe charge carrier recombination and lack of active sites. In this study, we report a two-step approach for the synthesis of CN nanotubes (TCN) loaded with NiS nanoparticles. The resulting composite photocatalysts gave a H 2 evolution rate of 752.9 μmol g -1 h -1 , which is 42.3 times higher compared to the pristine CN photocatalyst. Experimental and simulation results showed that the Schottky junction which was formed between TCN and NiS was key to achieving high activity. This is because the formation of Schottky junction prevented the backflow of electrons from NiS to TCN, which improved charge separation efficiency. More importantly, it also led to the accumulation of electrons on NiS, which significantly weakened the SH bond, such that the intermediate hydrogen species desorbed more easily from NiS surface to promote H 2 evolution activity.
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