4.8 Article

Amorphous Carbon Nitride with Three Coordinate Nitrogen (N3C) Vacancies for Exceptional NOx Abatement in Visible Light

Journal

ADVANCED ENERGY MATERIALS
Volume 11, Issue 19, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.202004001

Keywords

O-1; (2); amorphous carbon nitride (ACN); cyclicity; N3; (C)‐ site vacancies; NO oxidation

Funding

  1. National Natural Science Foundation of China [51772035, 11604032, 52071041]
  2. Fundamental Research Funds for the Central Universities [106112017CDJQJ308821]
  3. Key Project of Natural Science Foundation of China (NSFC) [91860202]
  4. NSFC [11404014, 51471008, 11327901, 51872008]
  5. 111 project [DB18015]
  6. Natural Science Foundation of Beijing Municipality [Z180014, 2192008]
  7. Beijing Outstanding Young Scientists Projects [BJJWZYJH01201910005018]

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This study introduces a new amorphous carbon nitride material ACN, which demonstrates improved visible-light NOx removal efficiency, exceptional structural stability, and enhanced photocatalytic performance.
Over the past several decades, much effort has been applied to atmospheric nitrogen oxide (NOx) abatement. The current techniques require high energy consumption and result in secondary pollution. Particularly, the removal of low dose (<200 ppm) of NOx has been very challenging. Though graphitic carbon nitride (g-CN), an eco-friendly and sustainable material was tried as a promising metal-free photocatalyst for NOx abatement. Herein, a one-step, energy efficient calcination approach is developed to prepare amorphous carbon nitride (ACN) with N3(C)-site vacancies. The visible-light responsive range is expanded and the activation barrier of N(sic)O triple bonds is sharply decreased by one order of magnitude; 0.19 eV when compared to the 2.22 eV of g-CN. These modifications allow the NOx removal efficiency of ACN to reach 57.1% which is among the highest in visible light. The unique N3(C)-site vacancies are well maintained after photocatalytic NO oxidation, which shows an exceptional structural stability. This boosts the generation of singlet oxygen (O-1(2)) and superoxide radical (O-center dot(2)-) for complete NO removal. This study sheds light on the active site design and photocatalytic performance enhancement of g-CN based materials by vacancy engineering.

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