EDTA-dominated hollow tube-like porous graphitic carbon nitride towards enhanced photocatalytic hydrogen evolution

  • Yazhou Zhang
  • , Tianhao Wang
  • , Botong Zheng
  • , Jinwen Shi
  • , Chongze Cai
  • , Liuhao Mao
  • , Cheng Cheng
  • , Shichao Zong
  • , Xu Guo
  • , Qingyun Chen

Research output: Contribution to journalArticlepeer-review

32 Scopus citations

Abstract

Graphite carbon nitride (g-C3N4) as metal-free photocatalyst has been widely studied recently in photocatalytic water reduction, which is considered as one of the promising routes to realizing the hydrogen energy-based society in the future. The generally used preparation process based on thermal polymerization of precursors easily brought the formation of aggregated nanosheets morphology, severely limiting its photocatalytic activity. Herein, the hollow tube-like morphology with porous surface was elaborately obtained by ethylene diamine tetraacetic acid (EDTA)-involved hydrothermal treatment of melamine precursor. The hollow and porous features shortened the migration distance of photo-generated carriers, trapped the incident lights, and provided more photocatalytic reactive sites, then realizing the enhanced photocatalytic H2-evolution activity up to 7.1 times that of pristine g-C3N4. The presence of EDTA acted as the pivotal role to control the recrystallization process of melamine and its derivative, cyanuric acid, and thus to determine the framework formation of the hollow tube-like microstructure. Moreover, complete thermal decomposition of cyanuric acid during the thermal polymerization of precursors was responsible for the hollow and porous features. This work extends the morphology regulation cognition of g-C3N4 based on hydrothermal treatment of precursors, and is expected to bring deep understanding and feasible strategies to design morphology-dominated highly-efficient g-C3N4 photocatalysts.

Original languageEnglish
Pages (from-to)289-297
Number of pages9
JournalJournal of Colloid and Interface Science
Volume619
DOIs
StatePublished - Aug 2022

Keywords

  • Graphitic carbon nitride
  • Hydrogen
  • Hydrothermal treatment
  • Microstructure adjustment
  • Photocatalysis

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