N, P, O co-doped carbon filling into carbon nitride microtubes to promote photocatalytic hydrogen production

Sci Total Environ. 2022 Feb 25:809:151114. doi: 10.1016/j.scitotenv.2021.151114. Epub 2021 Oct 21.

Abstract

Carbon nitride (CN) as the photocatalytic hydrogen production catalyst has attracted great attentions but suffering from a poor performance due to the unsatisfied energy band gap and the low separation efficiency of photogenerated carriers. Herein, we create a simple method to construct a novel CN-based photocatalyst, i.e., the N, P, O co-doped carbon filled CN microtube, which presents a narrow band gap, a high separation efficiency of photogenerated carriers, and a good stability. In this novel structure, the tubular morphology of CN ensures a narrow band gap, and the N, P, O co-doped carbon facilitates the transfer of photogenerated electrons. Coupling these two further reduces the energy band gap and improves the separation efficiency. For the photocatalytic hydrogen evolution under the visible light, the optimal sample presents an ultrahigh hydrogen evolution rate of 1149.71 μmol g-1 h-1 ranking at the top level, which is 112.60 times that of traditional bulk CN. In addition, it also has a high reusability and good stability after four cycle experiments. This study has provided a new viewpoint to design or develop the high-efficient photocatalysts for hydrogen production.

Keywords: Carbon nitride; Microtube; N, P, O co-doped carbon; Photocatalytic hydrogen production.

MeSH terms

  • Carbon*
  • Catalysis
  • Hydrogen
  • Nitriles*

Substances

  • Nitriles
  • cyanogen
  • Carbon
  • Hydrogen